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Spatio-temporal cuboid pyramid for action recognition using depth motion sequences

机译:时空长方体金字塔,用于使用深度运动序列进行动作识别

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In this paper, we present an effective method to recognize human actions from sequences of depth maps, which are captured by a consume depth sensor. In our approach, we first project each frame of a depth sequence onto three orthogonal planes and generate the depth motion sequence (DMS) between two consecutive frames from the three projected views. Then we propose a spatio-temporal cuboid pyramid (STCP) to subdivide the DMS volumes into a set of spatial cuboids on scaled temporal levels. And a cuboid fusion scheme is presented to concatenate the histograms of oriented gradients (HOG) features extracted from the spatial cuboid. The proposed approach is evaluated on three public benchmark datasets, i.e., MSRAction3D, MSRGesture3D and MSRActionPairs dataset. The experimental results demonstrate that the proposed method achieves state-of-the-art performance.
机译:在本文中,我们提出了一种有效的方法,该方法可从深度图序列识别人的动作,深度图序列由消耗深度传感器捕获。在我们的方法中,我们首先将深度序列的每个帧投影到三个正交平面上,然后从三个投影视图生成两个连续帧之间的深度运动序列(DMS)。然后,我们提出了一个时空长方体金字塔(STCP),以将DMS体积细分为按比例缩放的时间水平上的一组空间长方体。提出了一种长方体融合方案,以连接从空间长方体中提取的定向梯度直方图(HOG)特征。在三个公共基准数据集(即MSRAction3D,MSRGesture3D和MSRActionPairs数据集)上评估了所提出的方法。实验结果表明,所提出的方法达到了最先进的性能。

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