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首页> 外文期刊>Journal of the Royal Statistical Society. Series C, Applied statistics >Probabilistic feature analysis of facial perception of emotions
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Probabilistic feature analysis of facial perception of emotions

机译:面部表情对情绪的概率特征分析

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摘要

According to the hypothesis of configural encoding, the spatial relationships between the parts of the face function as an additional source of information in the facial perception of emotions. The paper analyses experimental data on the perception of emotion to investigate whether there is evidence for configural encoding in the processing of facial expressions. It is argued that analysis with a probabilistic feature model has several advantages that are not implied by, for example, a generalized linear modelling approach. First, the probabilistic feature model allows us to extract empirically the facial features that are relevant in processing the face, rather than focusing on the features that were manipulated in the experiment. Second, the probabilistic feature model allows a direct test of the hypothesis of configural encoding as it explicitly formalizes a mechanism for the way in which information about separate facial features is combined in processing the face. Third, the model allows us to account for a complex data structure while still yielding parameters that have a straightforward interpretation.
机译:根据配置编码的假设,面部各部分之间的空间关系充当面部表情对情感的附加信息来源。本文分析了关于情感感知的实验数据,以研究在面部表情处理中是否有证据支持配置编码。有人认为,使用概率特征模型进行分析具有一些优点,例如,广义线性建模方法并没有暗示这些优点。首先,概率特征模型允许我们凭经验提取与处理脸部相关的脸部特征,而不是关注实验中操纵的特征。其次,概率特征模型可以直接测试配置编码的假设,因为它明确形式化了一种机制,用于在处理面部时将有关单独面部特征的信息组合在一起。第三,该模型使我们能够解释复杂的数据结构,同时仍能产生具有直观解释的参数。

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