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A Low-Cost Search-and-Rescue Drone for Near Real-Time Detection of Missing Persons

机译:低成本搜救无人机,用于近实时检测失踪人员

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In this work, an unmanned aerial system is implemented to search an outdoor area for an injured or missing person (subject) without requiring a connection to a ground operator or control station. The system detects subjects using exclusively on-board hardware as it traverses a predefined search path, with each implementation envisioned as a single element of a larger swarm of identical search drones. Imagery is streamed from a camera to an Odroid single-board computer, which prepares the data for inference by a Neural Compute Stick vision accelerator. A single-class TinyYolo network, trained on the Okutama-Action dataset and an original Albatross dataset, is utilized to detect subjects in the prepared frames. The detection apparatus is mounted on a drone and field tests validate the system feasibility and efficacy.
机译:在这项工作中,实施了无人驾驶的空中系统,以搜索受伤或丢失的人(主题)的室外区域,而无需连接到地运算符或控制站。系统在遍历预定义的搜索路径时使用专门的板载硬件检测受试者,每个实现都设想为较大群的相同搜索变得级别的单个元素。图像从相机流式传输到ODROID单板计算机,这使得神经计算棒视觉加速器的推断准备了数据。在Okutama-Action DataSet上培训的单级Tinyyolo网络,用于检测准备好框架中的主题。检测装置安装在无人机上,现场测试验证系统可行性和功效。

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