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A Multiviewpoint Outdoor Dataset for Human Action Recognition

机译:用于人类行动识别的多视图户外数据集

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摘要

Advancements in deep neural networks have contributed to near-perfect results for many computer vision problems, such as object recognition, face recognition, and pose estimation. However, human action recognition is still far from human-level performance. Owing to the articulated nature of the human body, it is challenging to detect an action from multiple viewpoints, particularly from an aerial viewpoint. This is further compounded by a scarcity of datasets that cover multiple viewpoints of actions. To fill this gap and enable research in wider application areas, in this article we present a multiviewpoint outdoor action recognition dataset collected from YouTube and our own drone. The dataset consists of 20 dynamic human action classes, 2324 video clips, and 503 086 frames. All videos are cropped and resized to 720 x 720 without distorting the original aspect ratio of the human subjects in videos. This dataset should be useful to many research areas, including action recognition, surveillance, and situational awareness. We evaluate the dataset with a two-stream convolutional neural network architecture coupled with a recently proposed temporal pooling scheme called kernelized rank pooling that produces nonlinear feature subspace representations. The overall baseline action recognition accuracy is 74.0%.
机译:深度神经网络的进步对于许多计算机视觉问题(例如对象识别,人脸识别和姿势估计)都有助于接近完美的结果。但是,人类行动识别仍远非人类级别。由于人体的铰接性质,从多个观点来看,尤其是从鸟瞰图中检测动作是挑战性的。这通过覆盖多个对动作观点的数据集的稀缺进一步复合。为了填补此差距并在更广泛的应用领域启用研究,在本文中,我们介绍了从YouTube和我们自己的无人机收集的MultiviewPoint户外动作识别数据集。 DataSet由20个动态人类动作类,2324个视频片段和503 086帧组成。所有视频都被裁剪并调整为720 x 720,而不会扭曲视频中人类受试者的原始纵横比。该数据集应该对许多研究领域有用,包括行动识别,监视和态势意识。我们评估与双流卷积神经网络架构的数据集,其与最近提出的时间汇集方案耦合,该方案称为Kernelized等级池,其产生非线性特征子空间表示。整体基线动作识别准确性为74.0%。

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