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首页> 外文期刊>Journal of Sensors >BP Network Control for Resource Allocation and QoS Ensurance in UAV Cloud
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BP Network Control for Resource Allocation and QoS Ensurance in UAV Cloud

机译:无人机网络中用于资源分配和QoS保障的BP网络控制

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Unmanned aerial vehicle (UAV) cloud can greatly enhance the intelligence of unmanned systems by dynamically unloading the compute-intensive applications to cloud. For the uncertain nature of UAV missions and fast-changing environment, different UAV applications may have different quality of service (QoS) requirements. This paper proposes a mixed QoS ensurance and energy-balanced (MQEB) architecture for UAV cloud from a view of control theory, which can support both hard and soft QoS ensurance with the consideration of energy saving. The hard and soft QoS requirements are decoupled by being normalized into a two-level cascaded feedback loop. The former is time slot loop (TS-Loop) to enforce the absolute QoS ensurance for real-time applications, and the latter is contention window loop (CW-Loop) to enforce the plastic QoS ensurance for non-real-time applications. Finally, the back propagating (BP) neuron network is used for parameters’ self-tuning and controller design. The hardware experiments demonstrate the feasibility of MQEB. In heavy load, MQEB has greater throughput and better energy efficiency, and in light load, MQBE has lower total power consumption.
机译:通过将计算密集型应用程序动态卸载到云中,无人机(UAV)云可以大大增强无人机系统的智能。由于无人机任务的不确定性和快速变化的环境,不同的无人机应用可能具有不同的服务质量(QoS)要求。本文从控制理论的角度提出了无人机云的QoS保证和能量平衡(MQEB)混合架构,该框架在考虑节能的同时可以支持硬性和软性QoS保证。硬性和软性QoS要求通过归一化为两级级联反馈回路来解耦。前者是时隙循环(TS-Loop),用于为实时应用程序强制执行绝对的QoS确保,而后者是竞争窗口循环(CW-Loop),用于为非实时应用程序强制执行塑料QoS的保证。最后,反向传播(BP)神经元网络用于参数的自整定和控制器设计。硬件实验证明了MQEB的可行性。在重负载下,MQEB具有更高的吞吐量和更好的能源效率,而在轻负载下,MQBE具有更低的总功耗。

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