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首页> 外文期刊>Journal of visual communication & image representation >Pose Depth Volume extraction from RGB-D streams for frontal gait recognition
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Pose Depth Volume extraction from RGB-D streams for frontal gait recognition

机译:从RGB-D流提取姿态深度体积以识别正面步态

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摘要

We explore the applicability of Kinect RGB-D streams in recognizing gait patterns of individuals. Gait energy volume (GEV) is a recently proposed feature that performs gait recognition in frontal view using only depth image frames from Kinect. Since depth frames from Kinect are inherently noisy, corresponding silhouette shapes are inaccurate, often merging with the background. We register the depth and RGB frames from Kinect to obtain smooth silhouette shape along with depth information. A partial volume reconstruction of the frontal surface of each silhouette is done and a novel feature termed as Pose Depth Volume (PDV) is derived from this volumetric model. Recognition performance of the proposed approach has been tested on a data set captured using Microsoft Kinect in an indoor environment. Experimental results clearly demonstrate the effectiveness of the approach in comparison with other existing methods.
机译:我们探索Kinect RGB-D流在识别个人步态模式中的适用性。步态能量量(GEV)是最近提出的一项功能,它仅使用Kinect的深度图像帧在正面视图中执行步态识别。由于Kinect的深度框固有地嘈杂,因此相应的轮廓形状不准确,通常会与背景合并。我们从Kinect注册深度和RGB帧,以获取平滑的轮廓形状以及深度信息。对每个轮廓的前表面进行部分体积重建,并从该体积模型中得出一个称为“姿态深度体积”(PDV)的新颖特征。已针对在室内环境中使用Microsoft Kinect捕获的数据集测试了该方法的识别性能。实验结果清楚地证明了该方法与其他现有方法相比的有效性。

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