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Improving the Accuracy of Action Classification Using View-Dependent Context Information

机译:使用基于视图的上下文信息提高动作分类的准确性

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This paper presents a human action recognition system that decomposes the task in two subtasks. First, a view-independent classifier, shared between the multiple views to analyze, is applied to obtain an initial guess of the posterior distribution of the performed action. Then, this posterior distribution is combined with view based knowledge to improve the action classification. This allows to reuse the view-independent component when a new view has to be analyzed, needing to only specify the view dependent knowledge. An example of the application of the system into an smart home domain is discussed.
机译:本文提出了一种人类动作识别系统,该系统将任务分解为两个子任务。首先,在多个要分析的视图之间共享的,与视图无关的分类器被应用于获得所执行动作的后验分布的初始猜测。然后,将这种后验分布与基于视图的知识相结合,以改进动作分类。这样,当需要分析新视图时,只需指定特定于视图的知识,就可以重用与视图无关的组件。讨论了将该系统应用到智能家庭域中的示例。

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