Game Theoretic Congestion Control to Achieve Hard Reliability in Mission-Critical IoT

被引:0
|
作者
Mishra, Soumya Nandan [1 ]
Khatua, Manas [1 ]
机构
[1] Indian Inst Technol Guwahati, Dept Comp Sci & Engn, Gauhati, Assam, India
关键词
Reliability theory; Measurement; Data communication; Games; Internet of Things; Routing; Routing protocols; Congestion control; hard reliability; mission-critical IoT; multi-path routing; RPL;
D O I
10.1109/TMC.2024.3437483
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Mission-critical Internet of Things (MC-IoT) applications span from the industrial field to the battlefield and from smart homes to healthcare. Reliability is one of the stringent requirements of such applications. Routing in low-power and Lossy Networks (RPL) is a standard routing protocol traditionally used in IoT applications. Unlike the traditional single-path-based RPL, the reliable multi-path RPL (RMP-RPL) selects k parents for each transmitting node to achieve the hard reliability requirement in MC-IoT applications. However, the RMP-RPL fails to achieve the reliability requirement when the number of source nodes and traffic rate increases. In this paper, a multi-path game theoretic congestion control (GTMP-RPL) approach is proposed on top of the RMP-RPL to reduce congestion at the parent nodes of any child. In case of congestion at any one of the selected k parents, its child node replaces the congested parent by a non-congested parent with minimum rank from the set of remaining nodes. The rank of a node is calculated based on the Data Packet Drop Ratio (DPDR), Expected Transmission Count (ETX), and Node Mobility (NM) of that node. If no non-congested parent is available for that child node, a non-cooperative game is played among siblings to adjust their data transmission rates based on congestion occurrence at the parent, energy spent by the child, and parent connectivity of the child node. The solution obtained for the proposed game, using the Lagrange multiplier and Karush-Kuhn-Tucker (KKT) conditions, is used to reduce congestion at the parent node. The proposed scheme is validated using the cooja simulator in Contiki OS. Simulation results show that GTMP-RPL achieves a 99% packet delivery ratio for at most 50 source nodes with a traffic rate of 30 pkts/min present in a random topology of 101 nodes. In addition, it outperforms the other benchmark schemes by a significant margin to achieve hard reliability.
引用
收藏
页码:14159 / 14170
页数:12
相关论文
共 50 条
  • [41] Dependable Admission Control for Mission-Critical Mobile Applications in Wireless Mesh Networks
    Lindhorst, Timo
    Weseloh, Burkhard
    Nett, Edgar
    2014 IEEE 33RD INTERNATIONAL SYMPOSIUM ON RELIABLE DISTRIBUTED SYSTEMS (SRDS), 2014, : 182 - 190
  • [42] Unsourced Multiple Access for Mission-Critical Control Systems in Industrial Internet of Things
    Che, Jingze
    Zhang, Zhaoyang
    Tian, Yuqing
    Yang, Zhaohui
    Liu, Ming
    Deng, Zhiji
    Chen, Xiaoming
    IEEE INTERNET OF THINGS JOURNAL, 2024, 11 (17): : 27955 - 27968
  • [43] Smart Connected Canines: IoT Design Considerations for the Lab, Home, and Mission-critical Environments (Invited Paper)
    Majikes, John J.
    Mealin, Sean
    Rita, Brugarolas
    Walker, Katherine
    Yuschak, Sherrie
    Sherman, Barbara
    Bozkurt, Alper
    Roberts, David L.
    2016 IEEE 37TH SARNOFF SYMPOSIUM, 2016, : 118 - 123
  • [44] Towards Scalable, Secure, and Smart Mission-Critical IoT Systems: Review and Vision (Special Session Paper)
    Guo, Xiaolong
    Han, Song
    Hu, X. Sharon
    Jiao, Xun
    Jin, Yier
    Kong, Fanxin
    Lemmon, Michael
    2021 INTERNATIONAL CONFERENCE ON EMBEDDED SOFTWARE (EMSOFT 2021), 2021, : 1 - 10
  • [45] PR-CCA MAC: A Prioritized Random CCA MAC Protocol for Mission-Critical IoT Applications
    Farag, Hossam
    Mahmood, Aamir
    Gidlund, Mikael
    Osterberg, Patrik
    2018 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS (ICC), 2018,
  • [46] Reinforcement Learning-Based Power Control for Reliable Mission-Critical Wireless Transmission
    Guo, Chongtao
    Li, Zhengchao
    Liang, Le
    Li, Geoffrey Ye
    IEEE INTERNET OF THINGS JOURNAL, 2023, 10 (23) : 20868 - 20883
  • [47] Energy-Efficient Offloading for Mission-Critical IoT Services Using EVT-Embedded Intelligent Learning
    Feng, Lei
    Zhou, Yu
    Liu, Tang
    Que, Xiaoyu
    Yu, Peng
    Hong, Tao
    Qiu, Xuesong
    IEEE TRANSACTIONS ON GREEN COMMUNICATIONS AND NETWORKING, 2021, 5 (03): : 1179 - 1190
  • [48] Proactive fault-tolerant wireless mesh networks for mission-critical control systems
    Park, Pangun
    Ghadikolaei, Hossein S.
    Fischione, Carlo
    JOURNAL OF NETWORK AND COMPUTER APPLICATIONS, 2021, 186
  • [49] Game-theoretic linear-quadratic method for air mission control
    Mukai, H
    Tanikawa, A
    Tunay, I
    Ozcan, IA
    Katz, LN
    Schättler, H
    Rinaldi, P
    Wang, GJ
    Yang, L
    Sawada, Y
    PROCEEDINGS OF THE 39TH IEEE CONFERENCE ON DECISION AND CONTROL, VOLS 1-5, 2000, : 2574 - 2580
  • [50] An autonomous, multi-agent, IoT-empowered space logistics system for mission-critical inventory packing
    Yung, K. L.
    Tsang, Y. P.
    Wu, C. H.
    Ip, W. H.
    ISA TRANSACTIONS, 2023, 132 : 167 - 181