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Multivariate neural biomarkers of emotional states are categorically distinct

机译:情绪状态的多元神经生物标志物明显不同

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摘要

Understanding how emotions are represented neurally is a central aim of affective neuroscience. Despite decades of neuroimaging efforts addressing this question, it remains unclear whether emotions are represented as distinct entities, as predicted by categorical theories, or are constructed from a smaller set of underlying factors, as predicted by dimensional accounts. Here, we capitalize on multivariate statistical approaches and computational modeling to directly evaluate these theoretical perspectives. We elicited discrete emotional states using music and films during functional magnetic resonance imaging scanning. Distinct patterns of neural activation predicted the emotion category of stimuli and tracked subjective experience. Bayesian model comparison revealed that combining dimensional and categorical models of emotion best characterized the information content of activation patterns. Surprisingly, categorical and dimensional aspects of emotion experience captured unique and opposing sources of neural information. These results indicate that diverse emotional states are poorly differentiated by simple models of valence and arousal, and that activity within separable neural systems can be mapped to unique emotion categories.
机译:了解情感如何以神经方式表示是情感神经科学的中心目标。尽管经过数十年的神经影像学努力解决了这个问题,但尚不清楚情绪是按照分类理论所预测的是表示为不同的实体,还是根据维度说明所预测的是由较小的潜在因素构成的。在这里,我们利用多元统计方法和计算模型来直接评估这些理论观点。在功能性磁共振成像扫描过程中,我们使用音乐和电影引发了离散的情绪状态。神经激活的不同模式可以预测刺激的情感类别并跟踪主观体验。贝叶斯模型比较表明,结合情感的维模型和分类模型可以最好地描述激活模式的信息内容。令人惊讶的是,情感体验的类别和维度方面捕获了神经信息的独特且相反的来源。这些结果表明,不同的情绪状态通过价和唤醒的简单模型很难区分,并且可分离神经系统内的活动可以映射到独特的情绪类别。

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