论文标题

情感识别和个性效果的多竞争方法

A Multi-Componential Approach to Emotion Recognition and the Effect of Personality

论文作者

Mohammadi, Gelareh, Vuilleumier, Patrik

论文摘要

情绪是人性不可分割的一部分,影响了我们的行为,以应对外界。尽管大多数经验研究都由两个理论模型主导,包括神经科学方法的离散类别和二分法,但神经科学方法的结果表明,多过程机制为情感体验提供了跨不同情绪的大量重叠的机制。尽管这些发现与心理学中有影响力的情感理论相一致,这些理论强调了多个组成过程产生情绪发作的角色,但很少有研究系统地研究了离散情绪与完整的成分观点之间的关系。本文采用一个组成框架,采用数据驱动的方法来表征电影观看过程中引起的情感体验。结果表明,各种情绪之间的差异可以由一些(至少6个)潜在维度捕获,每个维度都由与组件过程相关的特征定义,包括评估,表达,生理学,动机和感觉。此外,探索了离散情绪和组件模型之间的联系,结果表明,具有有限描述符数量的组成模型仍然能够将经验丰富的离散情绪的水平预测到令人满意的水平。最后,由于评估可能会根据个人性格和偏见而有所不同,因此我们还研究了我们的计算框架中人格特质和情感之间的关系,并表明,使用组件模型可以更好地证明个性对离散情绪差异的作用。

Emotions are an inseparable part of human nature affecting our behavior in response to the outside world. Although most empirical studies have been dominated by two theoretical models including discrete categories of emotion and dichotomous dimensions, results from neuroscience approaches suggest a multi-processes mechanism underpinning emotional experience with a large overlap across different emotions. While these findings are consistent with the influential theories of emotion in psychology that emphasize a role for multiple component processes to generate emotion episodes, few studies have systematically investigated the relationship between discrete emotions and a full componential view. This paper applies a componential framework with a data-driven approach to characterize emotional experiences evoked during movie watching. The results suggest that differences between various emotions can be captured by a few (at least 6) latent dimensions, each defined by features associated with component processes, including appraisal, expression, physiology, motivation, and feeling. In addition, the link between discrete emotions and component model is explored and results show that a componential model with a limited number of descriptors is still able to predict the level of experienced discrete emotion(s) to a satisfactory level. Finally, as appraisals may vary according to individual dispositions and biases, we also study the relationship between personality traits and emotions in our computational framework and show that the role of personality on discrete emotion differences can be better justified using the component model.

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