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Person Reidentification Using Local Pattern Descriptors and Anthropometric Measures From Videos of Kinect Sensor

机译:使用Kinect传感器视频中的局部模式描述符和人体测量方法对人进行识别

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摘要

With development of RGB-D sensors, high-quality depth images are obtained easily. In this paper, we investigate the depth and skeleton information obtained from Kinect sensor for person reidentification and consider using inexpensive depth camera device known as Kinect camera. Using depth and skeleton information, some challenging problems in person reidentification as illumination and computation complexity are considered and new solutions are specified for the issues. In this paper, histograms of local binary patterns, local derivative patterns, and local tetra patterns are computed as features for person reidentification. Then, these histograms are fused with anthropometric features using score-level fusion. The proposed methods are applied on two database: RGBD-ID database and KinectREID database. Finally, experimental results demonstrate the validity of the proposed methods.
机译:随着RGB-D传感器的发展,可以轻松获得高质量的深度图像。在本文中,我们研究了从Kinect传感器获得的深度和骨骼信息以进行人身识别,并考虑使用称为Kinect相机的廉价深度相机设备。使用深度和骨架信息,考虑了照明和计算复杂性方面的人员识别方面的一些难题,并针对这些问题指定了新的解决方案。在本文中,将局部二进制模式,局部导数模式和局部四边形模式的直方图计算为人识别的特征。然后,使用得分级别融合将这些直方图与人体测量特征融合。所提出的方法应用于两个数据库:RGBD-ID数据库和KinectREID数据库。最后,实验结果证明了所提方法的有效性。

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