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Facial Expression Recognition by ICA with Selective Prior

机译:ICA选择性先验的面部表情识别

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摘要

Permutation ambiguity of the classical ICA may cause problems in feature extraction for pattern classification. To solve that, we include a selective prior for de-mixing coefficients into the classical ICA. Since the prior is constructed upon the classification information from the training data, we refer to the proposed ICA model with a selective prior as a supervised ICA. We formulate the learning rule for the supervised ICA by taking a form of the natural gradient approach, and then investigate the performance of the supervised ICA in facial expression recognition from the aspects of both the correct rate of recognition and the robustness to the number of independent components.
机译:经典ICA的置换歧义可能会在特征提取中进行模式分类带来问题。为了解决这个问题,我们包括一个选择性先验,用于将系数解混入经典ICA。由于先验是基于训练数据的分类信息构建的,因此我们将具有选择性先验的拟议ICA模型称为监督ICA。我们采用自然梯度法的形式,制定了有监督ICA的学习规则,然后从正确识别率和鲁棒性到独立次数两方面研究了有监督ICA在面部表情识别中的性能。组件。

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