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Searching for Complex Human Activities with No Visual Examples

机译:搜索没有视觉示例的复杂人类活动

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摘要

We describe a method of representing human activities that allows a collection of motions to be queried without examples, using a simple and effective query language. Our approach is based on units of activity at segments of the body, that can be composed across space and across the body to produce complex queries. The presence of search units is inferred automatically by tracking the body, lifting the tracks to 3D and comparing to models trained using motion capture data. Our models of short time scale limb behaviour are built using labelled motion capture set. We show results for a large range of queries applied to a collection of complex motion and activity. We compare with discriminative methods applied to tracker data; our method offers significantly improved performance. We show experimental evidence that our method is robust to view direction and is unaffected by some important changes of clothing.
机译:我们描述了一种表示人类活动的方法,该方法允许使用一种简单有效的查询语言来查询无示例的动作集合。我们的方法基于身体各部分的活动单位,这些活动单位可以跨空间和跨身体组成,以产生复杂的查询。通过跟踪身体,将轨迹提升到3D并与使用运动捕捉数据训练的模型进行比较,可以自动推断出搜索单元的存在。我们的短时标肢体行为模型是使用标记的运动捕获集构建的。我们显示了应用于一系列复杂运动和活动的大量查询的结果。我们将比较方法应用于跟踪器数据;我们的方法可以显着提高性能。我们显示了实验证据,表明我们的方法对查看方向具有鲁棒性,并且不受衣服的某些重要变化的影响。

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