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RGB-Depth feature for 3D human activity recognition

机译:RGB深度功能可识别3D人类活动

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We study the problem of human activity recognition from RGB-Depth (RGBD) sensors when the skeletons are not available. The skeleton tracking in Kinect SDK works well when the human subject is facing the camera and there are no occlusions. In surveillance or nursing home monitoring scenarios, however, the camera is usually mounted higher than human subjects, and there may be occlusions. The interest-point based approach is widely used in RGB based activity recognition, it can be used in both RGB and depth channels. Whether we should extract interest points independently of each channel or extract interest points from only one of the channels is discussed in this paper. The goal of this paper is to compare the performances of different methods of extracting interest points. In addition, we have developed a depth map-based descriptor and built an RGBD dataset, called RGBD-SAR, for senior activity recognition. We show that the best performance is achieved when we extract interest points solely from RGB channels, and combine the RGB-based descriptors with the depth map-based descriptors. We also present a baseline performance of the RGBD-SAR dataset.
机译:当骨骼不可用时,我们研究了从RGB深度(RGBD)传感器识别人类活动的问题。当人类对象面对相机且没有遮挡时,Kinect SDK中的骨骼跟踪效果很好。但是,在监视或疗养院监视场景中,摄像头通常安装在比人类对象更高的位置,并且可能存在遮挡物。基于兴趣点的方法已广泛用于基于RGB的活动识别中,可同时用于RGB和深度通道中。本文讨论了是否应该独立于每个渠道提取兴趣点还是仅从其中一个渠道提取兴趣点。本文的目的是比较不同方法提取兴趣点的性能。此外,我们已经开发了基于深度图的描述符,并建立了RGBD数据集RGBD-SAR,用于高级活动识别。我们证明了,当我们仅从RGB通道中提取兴趣点,并将基于RGB的描述符与基于深度图的描述符结合在一起时,可获得最佳性能。我们还介绍了RGBD-SAR数据集的基准性能。

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