Understanding purposeful human motion

C. Wren, B. Clarkson, A. Pentland
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引用次数: 91

Abstract

Human motion can be understood on many levels. The most basic level is the notion that humans are collections of things that have predictable visual appearance. Next is the notion that humans exist in a physical universe, as a consequence of this, a large part of human motion can be modeled and predicted with the laws of physics. Finally there is the notion that humans utilize muscles to actively shape purposeful motion. We employ a recursive framework for real-time, 3D tracking of human motion that enables pixel-level, probabilistic processes to take advantage of the contextual knowledge encoded in the higher-level models, including models of dynamic constraints on human motion. We show that models of purposeful action arise naturally from this framework, and further, that those models can be used to improve the perception of human motion. Results are shown that demonstrate automatic discovery of features in this new feature space.
理解有目的的人体动作
人类的运动可以从很多层面来理解。最基本的概念是,人类是具有可预测视觉外观的事物的集合。其次是人类存在于一个物理宇宙的概念,因此,人类的大部分运动可以用物理定律来建模和预测。最后一种观点认为,人类利用肌肉主动塑造有目的的动作。我们采用递归框架对人体运动进行实时3D跟踪,使像素级概率过程能够利用高级模型中编码的上下文知识,包括人体运动的动态约束模型。我们表明,有目的的行为模型从这个框架中自然产生,而且,这些模型可以用来提高对人类运动的感知。结果表明,在新的特征空间中实现了特征的自动发现。
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