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A system for change detection and human recognition in voxel space using the Microsoft Kinect sensor

机译:使用Microsoft Kinect传感器的体素空间中的变化检测和人类识别系统

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Previously, we put forth a new computer vision system for indoor well-being monitoring of elderly populations based on the use of multiple stereo camera pairs. That approach involves combining the strengths of image space with three dimensional volume element (voxel) space techniques. However, that system is fundamentally limited because it is based on color imagery from visible light cameras. In this article, we extend our prior research and consider a new, inexpensive infrared depth camera device, the Microsoft Kinect. Advantages, such as the ability to operate 24-7 in low-to-no light conditions, and shortcomings are detailed. In addition, we discuss necessary algorithmic extensions to our mixed image and voxel space framework for the Kinect sensor. Experiments are performed in a laboratory designed to resemble an elders living quarter. Vision findings are evaluated using our prior high-level linguistic summarization of human activity work. Preliminary results indicate that the Kinect sensor does indeed work in a wider range of operating conditions and it can produce activity descriptions that match that of a human.
机译:以前,我们基于使用多个立体摄像机对,提出了一种新的计算机视觉系统,用于老年人的室内健康监测。该方法涉及将图像空间的优势与三维体积元(体素)空间技术相结合。但是,该系统从根本上受到限制,因为它基于可见光相机的彩色图像。在本文中,我们扩展了先前的研究范围,并考虑了一种新型的廉价红外测深仪设备Microsoft Kinect。详细介绍了优点,例如在低到无光照的条件下可全天候运行24-7的缺点。此外,我们讨论了针对Kinect传感器的混合图像和体素空间框架的必要算法扩展。实验是在一个类似于老年人居住区的实验室中进行的。视觉结果是使用我们先前对人类活动工作进行的高级语言总结来评估的。初步结果表明,Kinect传感器确实可以在更广泛的操作条件下工作,并且可以产生与人类相匹配的活动描述。

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