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人类视觉运动知觉具有贝叶斯结构推理的特征。

Human visual motion perception shows hallmarks of Bayesian structural inference.

机构信息

Department of Psychology, University of Wisconsin-Madison, Madison, USA.

Max Planck Institute for Biological Cybernetics, Tübingen, Germany.

出版信息

Sci Rep. 2021 Feb 12;11(1):3714. doi: 10.1038/s41598-021-82175-7.

Abstract

Motion relations in visual scenes carry an abundance of behaviorally relevant information, but little is known about how humans identify the structure underlying a scene's motion in the first place. We studied the computations governing human motion structure identification in two psychophysics experiments and found that perception of motion relations showed hallmarks of Bayesian structural inference. At the heart of our research lies a tractable task design that enabled us to reveal the signatures of probabilistic reasoning about latent structure. We found that a choice model based on the task's Bayesian ideal observer accurately matched many facets of human structural inference, including task performance, perceptual error patterns, single-trial responses, participant-specific differences, and subjective decision confidence-especially, when motion scenes were ambiguous and when object motion was hierarchically nested within other moving reference frames. Our work can guide future neuroscience experiments to reveal the neural mechanisms underlying higher-level visual motion perception.

摘要

视觉场景中的运动关系蕴含着大量与行为相关的信息,但人们对人类如何首先识别场景运动的结构知之甚少。我们在两项心理物理学实验中研究了支配人类运动结构识别的计算,发现对运动关系的感知表现出贝叶斯结构推理的特征。我们研究的核心是一种易于处理的任务设计,使我们能够揭示关于潜在结构的概率推理的特征。我们发现,基于任务贝叶斯理想观察者的选择模型准确地匹配了人类结构推理的许多方面,包括任务表现、感知错误模式、单次试验反应、参与者特定差异和主观决策置信度——尤其是当运动场景存在歧义并且物体运动嵌套在其他运动参考系中时。我们的工作可以指导未来的神经科学实验,以揭示高级视觉运动感知的神经机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a700/7881251/a751a2b37002/41598_2021_82175_Fig1_HTML.jpg

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