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UAV-GESTURE: A Dataset for UAV Control and Gesture Recognition

机译:无人机手势:用于无人机控制和手势识别的数据集

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Current UAV-recorded datasets are mostly limited to action recognition and object tracking, whereas the gesture signals datasets were mostly recorded in indoor spaces. Currently, there is no outdoor recorded public video dataset for UAV commanding signals. Gesture signals can be effectively used with UAVs by leveraging the UAVs visual sensors and operational simplicity. To fill this gap and enable research in wider application areas, we present a UAV gesture signals dataset recorded in an outdoor setting. We selected 13 gestures suitable for basic UAV navigation and command from general aircraft handling and helicopter handling signals. We provide 119 high-definition video clips consisting of 37151 frames. The overall baseline gesture recognition performance computed using Pose-based Convolutional Neural Network (P-CNN) is 91.9%. All the frames are annotated with body joints and gesture classes in order to extend the dataset's applicability to a wider research area including gesture recognition, action recognition, human pose recognition and situation awareness.
机译:当前无人机记录的数据集主要限于动作识别和对象跟踪,而手势信号数据集主要记录在室内空间中。当前,没有户外记录的用于UAV命令信号的公共视频数据集。通过利用无人机的视觉传感器和操作简便性,手势信号可以有效地用于无人机。为了填补这一空白并在更广泛的应用领域进行研究,我们提出了在室外环境下记录的无人机手势信号数据集。我们从一般飞机操纵和直升机操纵信号中选择了13种适合基本无人机导航和命令的手势。我们提供由37151帧组成的119个高清视频剪辑。使用基于姿势的卷积神经网络(P-CNN)计算得出的总体基线手势识别性能为91.9%。所有帧都用人体关节和手势类进行注释,以将数据集的适用性扩展到更广泛的研究领域,包括手势识别,动作识别,人体姿势识别和态势感知。

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