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An Effective Skeleton Extraction Method Based on Kinect Depth Image

机译:一种基于Kinect深度图像的有效骨架提取方法

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In order to enable Kinect to achieve skeleton extraction, Microsoft proposed a classifier containing many depth features. To enable the classifier to identify human body, Microsoft input the number of TB-based motion capture data to the cluster system training models. In this paper, we propose a novel human skeleton extraction method based on the depth images extracted by Kinect. Our method does not require complex motion equipment or a large amount of motion data. Firstly, foreground extraction is performed by using the depth information in the depth image to obtain the depth map of the human body area. Then we use the threshold obtained by the algorithm our proposed to segment the body parts with different depth values in the depth map. After segmentation we can obtain the image of the self-occluded part. Next, we obtain the skeleton corresponding to the image of the human body depth map and the self-occlusion part, and finally, we combine the skeletons of these two parts to get the complete skeleton. Experimental results show that our skeleton extraction method can effectively achieve the skeleton extraction of the human body in the natural background.
机译:为了使Kinect能够实现骨骼提取,Microsoft提出了一个包含许多深度特征的分类器。为了使分类器能够识别人体,Microsoft将大量基于TB的运动捕获数据输入到群集系统训练模型中。在本文中,我们基于Kinect提取的深度图像提出了一种新颖的人体骨骼提取方法。我们的方法不需要复杂的运动设备或大量的运动数据。首先,利用深度图像中的深度信息进行前景提取以获得人体区域的深度图。然后,使用由我们提出的算法获得的阈值对深度图中不同深度值的身体部位进行分割。分割后,我们可以获得自遮挡部分的图像。接下来,获得与人体深度图的图像和自我遮挡部分相对应的骨骼,最后,将这两个部分的骨骼组合起来,以获得完整的骨骼。实验结果表明,我们的骨骼提取方法可以有效地实现自然背景下人体的骨骼提取。

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