在行动观察中,将目标与结果分离。

IF 2.9 2区 医学 Q2 NEUROSCIENCES
Shuchen Liu, Moritz F Wurm, Alfonso Caramazza
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引用次数: 0

摘要

理解观察到的操作的目标需要计算对操作的特定实例不变的表示。例如,即使代理的预期结果没有实现,我们也可以准确地推断出行动的目标。持续观察动作需要一组额顶叶和后颞区,通常被称为“动作观察网络”。虽然在绘制行动观察网络的哪些区域参与理解观察到的行动的目标方面取得了进展,但尚不清楚目标在何处独立于结果表示。我们使用基于功能磁共振的多元模式分析来识别这些区域。人类参与者(20名女性,12名男性)观看了不同目标的成功和失败尝试的视频,涉及两种不同的物体类型。我们发现,无论结果如何,双侧前下顶叶和右侧腹侧运动前皮层都能区分物体特异性动作目标。左前下顶叶编码动作目标,而不管结果和对象类型。我们的研究结果揭示了动作目标表征的神经基础,以及额顶叶和后颞叶在动作理解中的不同作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dissociating goal from outcome during action observation.

Understanding the goal of an observed action requires computing representations that are invariant to specific instantiations of the action. For example, we can accurately infer the goal of an action even when the agent's desired outcome is not achieved. Observing actions consistently recruits a set of frontoparietal and posterior temporal regions, often labeled the "action observation network." While progress has been made in charting which regions of the action observation network are involved in understanding goals of observed actions, it is not clear where goals are represented independently of outcomes. We used functional magnetic resonance-based multivariate pattern analysis to identify such regions. Human participants (20 females, 12 males) watched videos of successful and failed attempts of actions with different goals involving two different object types. We found that the bilateral anterior inferior parietal lobe and the right ventral premotor cortex distinguished between object-specific action goals regardless of outcomes. The left anterior inferior parietal lobe encodes action goals regardless of both outcomes and object types. Our results provide insights into the neural basis of representing action goals and the different roles of frontoparietal and posterior temporal regions in action understanding.

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来源期刊
Cerebral cortex
Cerebral cortex 医学-神经科学
CiteScore
6.30
自引率
8.10%
发文量
510
审稿时长
2 months
期刊介绍: Cerebral Cortex publishes papers on the development, organization, plasticity, and function of the cerebral cortex, including the hippocampus. Studies with clear relevance to the cerebral cortex, such as the thalamocortical relationship or cortico-subcortical interactions, are also included. The journal is multidisciplinary and covers the large variety of modern neurobiological and neuropsychological techniques, including anatomy, biochemistry, molecular neurobiology, electrophysiology, behavior, artificial intelligence, and theoretical modeling. In addition to research articles, special features such as brief reviews, book reviews, and commentaries are included.
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