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A component based approach improves classification of discrete facial expressions over a holistic approach

机译:基于组件的方法比整体方法改进了离散面部表情的分类

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摘要

Current approaches to facial expression classification employ a variety of expression classes and different preprocessing steps, making comparison of results difficult. To outline the effects of these variations we explore several image and action preprocessing steps, using the discrete expressions: happy, sad, surprised, fearful, angry, disgusted and neutral; with a dataset aligned and normalised by our proposed face model. Each of the preprocessing steps is organised across four prominent approaches: holistic, holistic action, component and component action. These are compared using a modified multiclass Support Vector Machine (SVM) that uses pairwise adaptive model parameters. We illustrate that including the neutral expression as part of the study has a noticeable impact, and suggest that it should be used in future research in this area. We also show that results can be improved through innovative use of image and action preprocessing steps. Our best correct classification rate was 98.33% using 10-fold cross validation and a component action approach.
机译:当前的面部表情分类方法采用了各种表情类和不同的预处理步骤,从而难以比较结果。为了概述这些变化的影响,我们使用离散的表达方式探索了几个图像和动作预处理步骤:快乐,悲伤,惊讶,恐惧,生气,厌恶和中立;并通过我们提出的人脸模型对数据集进行了归一化和标准化。每个预处理步骤都通过四种主要方法进行组织:整体,整体动作,组件和组件动作。使用改进的多类支持向量机(SVM)(使用成对自适应模型参数)进行比较。我们举例说明,将中性表达作为研究的一部分会产生明显的影响,并建议将其用于该领域的未来研究中。我们还表明,通过创新使用图像和动作预处理步骤可以改善结果。使用10倍交叉验证和组件操作方法,我们最好的正确分类率为98.33%。

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