情感是混乱的:我们在情感科学中研究的情感也应如此。

IF 2.1 Q2 PSYCHOLOGY
Anthony G. Vaccaro
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引用次数: 0

摘要

情感科学面临着在基础情感科学与实际应用之间架起一座桥梁的挑战。本期 "情感科学的未来 "中的文章阐述了方法论和概念框架,使我们能够将情感科学扩展到现实世界的环境中,并处理自然主义方法。在取得这些进步的同时,要实现这一目标,我们还需要重新关注我们所研究的体验类型以及我们感兴趣的体验测量方法。本文探讨了基础情感科学接受人类情感的混乱和复杂性质的必要性,以弥合理论概念与现实世界适用性之间的差距。具体来说,这涉及到研究那些并不完全符合主流概念框架的体验,如情感量表和最常见的离散情感类别,而且这些体验可能更难测量或实验控制。这使得情感科学与现实世界的情感之间的差距变得更大。为了推动该领域以实证的方式纳入情绪复杂性,我建议测量标准应偏向于较少的固定选择选项,并使用刺激物,因为这些刺激物有可能在同一个人身上随着时间的推移引起高度复杂的反应。设计能够测量这些体验的研究将推动情绪理论解释其最初设计时并不适用的数据,从而有可能促进完善和合作。这些方法将有助于全面捕捉人类的情感体验,从而对情感科学有更细致入微和更适用的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Feelings are Messy: The Feelings We Study in Affective Science Should Be Too

Affective science has taken up the challenge of building a bridge between basic affective science and practical applications. The articles in the Future of Affective Science issue lay out methodological and conceptual frameworks that allow us to expand affective science into real-world settings and to handle naturalistic methods. Along with these advances, accomplishing this goal will require additionally refocusing the types of experiences we study, and the measures of experience we are interested in. This paper explores the necessity for basic affective science to embrace the messy and complex nature of human emotion in order to bridge the gap between theoretical concepts and real-world applicability. Specifically, this involves studying experiences that do not fit as neatly into dominant conceptual frameworks, such as valenced scales and the most common discrete emotion categories, and that may be more difficult to measure or experimentally control. This makes the gap between affective science and real-world feelings larger. To move the field towards incorporating emotional complexity in an empirical manner, I propose measurement standards that err on the side of less fixed-choice options and using stimuli chosen for their potential to elicit highly complex responses over time within the same individual. Designing studies that can measure these experiences will push emotion theories to explain data they were not originally designed for, likely leading to refinement and collaboration. These approaches will help capture the full spectrum of human emotional experience, leading to a more nuanced and applicable understanding of affective science.

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CiteScore
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