强化学习
无人机
计算机科学
人工智能
概率逻辑
帧(网络)
集合(抽象数据类型)
人气
深度学习
磁道(磁盘驱动器)
跟踪(教育)
机器学习
计算机视觉
电信
心理学
生物
社会心理学
操作系统
遗传学
程序设计语言
教育学
作者
Alexandre Bonnet,Moulay A. Akhloufi
摘要
Over the past few years, UAVs have known and increase in popularity and are now widely used in many applications. Today, the use of multiple UAVs and UAV swarms are attracting more interest from the research community leading to the exploration of topics such as UAV cooperation, multi-drones autonomous navigation, etc. In this work, we are interested in UAVs tracking and pursuit. The goal here, is to use deep learning and the captured images from one of the UAVs to detect and track the second moving UAV. The proposed approach uses deep reinforcement learning for UAV pursuit. The input is the current frame cropped using the last target pose, and the output is a probabilistic distribution between a set of possible actions. The experimental results are promising and show that the proposed algorithm achieves high performances in challenging outdoor scenarios.
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