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首页> 外文期刊>IEEE Transactions on Cognitive Communications and Networking >Optimization of Task Scheduling and Dynamic Service Strategy for Multi-UAV-Enabled Mobile-Edge Computing System
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Optimization of Task Scheduling and Dynamic Service Strategy for Multi-UAV-Enabled Mobile-Edge Computing System

机译:优化支持多UAV的移动边缘计算系统的任务调度和动态服务策略

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摘要

In this study, we introduce a multi-unmanned aerial vehicle (multi-UAV) enabled mobile edge computing (MEC) system, with UAVs as the computing server for the task offloading of ground users. The energy consumption for ground users is minimized by jointly optimizing the UAV task scheduling, bit allocation, and UAV trajectory in a unified framework. To accomplish such goal, we propose a two-layer optimization strategy, where the upper layer optimizes the UAV task scheduling based on a dynamic programming-based bidding optimization method, while the lower one solves the bit allocation and UAV trajectory. In particular, the lower layer is decoupled into several subproblems to reduce the computational complexity, which can be easily solved using an alternating direction method of multipliers. However, the UAV trajectories optimized by solving the decoupled subproblems may lead to path conflicts. As such, we further propose a re-optimization strategy to eliminate such conflicts. Experimental results demonstrate that the proposed strategy achieves a favorable performance than those of greedy and random strategies in terms of total user energy consumption, the trajectory conflicts can be eliminated effectively, and the UAV trajectory can satisfy the safety constraints.
机译:在这项研究中,我们引入了一种多人空中飞行器(多UAV)的移动边缘计算(MEC)系统,具有UAV作为接地用户的任务卸载的计算服务器。通过在统一框架中共同优化UAV任务调度,BIT分配和UAV轨迹,最小化地面用户的能量消耗最小化。为了实现这样的目标,我们提出了一种双层优化策略,其中上层基于基于动态编程的竞标优化方法优化了UAV任务调度,而下则较低的位置解决了比特分配和UAV轨迹。特别地,下层被分离成几个子问题,以降低计算复杂性,这可以使用乘法器的交替方向方法容易地解决。但是,通过解决解耦子问题优化的UAV轨迹可能导致路径冲突。因此,我们进一步提出了一种重新优化策略来消除这种冲突。实验结果表明,该策略在总用户能源消耗方面实现了比贪婪和随机策略的良好性能,可以有效地消除轨迹冲突,无人机轨迹可以满足安全限制。

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