Search Results for author: Zhisheng Yin

Found 5 papers, 0 papers with code

Imperfect Digital Twin Assisted Low Cost Reinforcement Training for Multi-UAV Networks

no code implementations25 Oct 2023 Xiucheng Wang, Nan Cheng, Longfei Ma, Zhisheng Yin, Tom. Luan, Ning Lu

Two cascade neural networks (NN) are used to optimize the joint number of virtually generated UAVs, the DT construction cost, and the performance of multi-UAV networks.

reinforcement-learning

Label-free Deep Learning Driven Secure Access Selection in Space-Air-Ground Integrated Networks

no code implementations28 Aug 2023 Zhaowei Wang, Zhisheng Yin, Xiucheng Wang, Nan Cheng, Yuan Zhang, Tom H. Luan

Considering the inherent co-channel interference due to spectrum sharing among multi-tier access networks in SAGIN, it can be leveraged to assist the physical layer security among heterogeneous transmissions.

Distilling Knowledge from Resource Management Algorithms to Neural Networks: A Unified Training Assistance Approach

no code implementations15 Aug 2023 Longfei Ma, Nan Cheng, Xiucheng Wang, Zhisheng Yin, Haibo Zhou, Wei Quan

To fully leverage the high performance of traditional model-based methods and the low complexity of the NN-based method, a knowledge distillation (KD) based algorithm distillation (AD) method is proposed in this paper to improve the performance and convergence speed of the NN-based method, where traditional SINR optimization methods are employed as ``teachers" to assist the training of NNs, which are ``students", thus enhancing the performance of unsupervised and reinforcement learning techniques.

Knowledge Distillation Management +1

Interpretable and Secure Trajectory Optimization for UAV-Assisted Communication

no code implementations5 Jul 2023 Yunhao Quan, Nan Cheng, Xiucheng Wang, Jinglong Shen, Longfei Ma, Zhisheng Yin

Unmanned aerial vehicles (UAVs) have gained popularity due to their flexible mobility, on-demand deployment, and the ability to establish high probability line-of-sight wireless communication.

Collision Avoidance Explainable Artificial Intelligence (XAI)

Digital Twin-Assisted Efficient Reinforcement Learning for Edge Task Scheduling

no code implementations2 Aug 2022 Xiucheng Wang, Longfei Ma, Haocheng Li, Zhisheng Yin, Tom. Luan, Nan Cheng

We use DT to simulate the results of different decisions made by the agent, so that one agent can try multiple actions at a time, or, similarly, multiple agents can interact with environment in parallel in DT.

Q-Learning reinforcement-learning +2

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