论文标题
通过随机请求的无线无人机继电器的功率受限轨迹优化
Power-Constrained Trajectory Optimization for Wireless UAV Relays with Random Requests
论文作者
论文摘要
本文研究了旋转翼无人机的自适应轨迹设计,该设计是分散在圆形细胞中的地面节点之间的继电器,并根据泊松工艺随机生成上行链路数据传输,并产生中央基地站。我们试图最大程度地减少预期的平均通信延迟以服务数据传输请求,但对无人机的移动性的平均功率约束。该问题是作为半马尔可夫决策过程施放的,这表明该政策表现出两尺度的结构,可以有效地优化:在外部决策中,在开始通信阶段并鉴于其当前半径,无人机选择目标端半径位置,以便在平均长期通信延迟和电力消耗之间达到最佳平衡;在内部决策中,无人机在开始半径和选定的末端半径之间选择其轨迹,以便最大程度地减少服务当前请求的延迟和能耗。数值评估表明,在等待阶段,以最佳的速度以最佳的半径为止,直到收到新的请求。最后,将预期的平均沟通延迟和最佳政策的功耗与几种启发式方法进行了比较,这表明与静态和移动的启发式方案相比,延迟分别降低了50%和20%。
This paper studies the adaptive trajectory design of a rotary-wing UAV serving as a relay between ground nodes dispersed in a circular cell and generating uplink data transmissions randomly according to a Poisson process, and a central base station. We seek to minimize the expected average communication delay to service the data transmission requests, subject to an average power constraint on the mobility of the UAV. The problem is cast as a semi-Markov decision process, and it is shown that the policy exhibits a two-scale structure, which can be efficiently optimized: in the outer decision, upon starting a communication phase, and given its current radius, the UAV selects a target end radius position so as to optimally balance a trade-off between average long-term communication delay and power consumption; in the inner decision, the UAV selects its trajectory between the start radius and the selected end radius, so as to greedily minimize the delay and energy consumption to serve the current request. Numerical evaluations show that, during waiting phases, the UAV circles at some optimal radius at the most energy efficient speed, until a new request is received. Lastly, the expected average communication delay and power consumption of the optimal policy is compared to that of several heuristics, demonstrating a reduction in latency by over 50% and 20%, respectively, compared to static and mobile heuristic schemes.