Intelligent backoff technology of SPMA protocol in UAV ad hoc networks: multi-dimensional decision driven by DDQN
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1. System Engineering Research Institute, Academy of Military Sciences, Beijing 100082 , China ;2. College of Electronic Science and Technology, National University of Defense Technology, Changsha 410073 , China

Clc Number:

TN929.5

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    Abstract:

    The existing backoff mechanism of the SPMA(statistic priority-based multiple access) protocol relies on static function models and has single dimension of optimization parameters, making it unable to adapt to dynamic transmission and multi-priority requirements in UAV ad hoc networks. To address this issue, the dynamic decision-making process of node selection for backoff time in the SPMA protocol was modeled as a Markov decision process, and an intelligent backoff strategy based on the DDQN(double deep Q-network) was innovatively proposed. This strategy comprehensively consideres factors such as service priority, thresholds, and channel load, and adopts the DDQN algorithm to select backoff time within a finite and discrete action space. Simulation results show that, compared to traditional binary exponential backoff strategies and logarithmic function-based backoff strategies, the proposed strategy can reduce the transmission delay for low-priority services by up to 33.3%, increase the initial backoff success rate by 18%, and effectively improve the transmission success rate and adapt to the variation of network scale well.

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王海军, 王洁, 张姣, 等. 无人机自组网SPMA协议智能退避技术:DDQN驱动的多维决策[J]. 国防科技大学学报, 2026, 48(3): 96-106.

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History
  • Received:July 29,2025
  • Revised:
  • Adopted:
  • Online: June 04,2026
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