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Recognizing human action efforts: an adaptive three-mode PCA framework

机译:认识人类行动努力:自适应三模PCA框架

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We present a computational framework capable of labeling the effort of an action corresponding to the perceived level of exertion by the performer (low - high). The approach initially factorizes examples (at different efforts) of an action into its three-mode principal components to reduce the dimensionality. Then a learning phase is introduced to compute expressive-feature weights to adjust the model's estimation of effort to conform to given perceptual labels for the examples. Experiments are demonstrated recognizing the efforts of a person carrying bags of different weight and for multiple people walking at different paces.
机译:我们提出了一种能够标记对应于表演者(低高)对应的动作的努力的计算框架。该方法最初将动作的示例(以不同的努力分解为其三模主组件以降低维度。然后引入了学习阶段来计算表达特征权重,以调整模型的努力估计,以符合示例的给定感知标签。证明了携带不同重量的人袋和在不同步伐走路的人的努力的实验。

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