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An improved scheme for detection and labelling in Johansson displays

机译:Johansson显示器中用于检测和标记的改进方案

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摘要

Consider a number of moving points, where each point is attached to a joint of the human body and projected onto an image plane. Johannson showed that humans can effortlessly detect and recognize the presence of other humans from such displays. This is true even when some of the body points are missing (e.g. because of occlusion) and unrelated clutter points are added to the display. We are interested in replicating this ability in a machine. To this end, we present a labelling and detection scheme in a probabilistic framework. Our method is based on representing the joint probability density of positions and velocities of body points with a graphical model, and using Loopy Belief Propagation to calculate a likely interpretation of the scene. Furthermore, we introduce a global variable representing the body's centroid. Experiments on one motion-captured sequence suggest that our scheme improves on the accuracy of a previous approach based on triangulated graphical models, especially when very few parts are visible. The improvement is due both to the more general graph structure we use and, more significantly, to the introduction of the centroid variable.
机译:考虑多个移动点,其中每个点都附着在人体的关节上并投影到图像平面上。约翰逊(Johannson)表明,人类可以通过这种显示器轻松地检测和识别其他人类的存在。即使缺少某些身体点(例如由于遮挡)并且不相关的杂乱点被添加到显示器,也是如此。我们有兴趣在机器上复制此功能。为此,我们在概率框架中提出了一种标记和检测方案。我们的方法基于用图形模型表示身体点的位置和速度的联合概率密度,并使用Loopy Belief Propagation来计算场景的可能解释。此外,我们引入了代表身体质心的全局变量。在一个运动捕获序列上进行的实验表明,我们的方案改进了基于三角化图形模型的先前方法的准确性,尤其是当可见部分很少时。改进归因于我们使用的更一般的图结构,更重要的是归因于质心变量的引入。

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