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V4区的预测编码:部分遮挡下的动态形状辨别

Predictive Coding in Area V4: Dynamic Shape Discrimination under Partial Occlusion.

作者信息

Choi Hannah, Pasupathy Anitha, Shea-Brown Eric

机构信息

Department of Applied Mathematics and UW Institute for Neuroengineering, University of Washington, Seattle, WA 98195, U.S.A.

Department of Biological Structure, Washington National Primate Research Center, and UW Institute for Neuroengineering, University of Washington, Seattle, WA 98195, U.S.A.

出版信息

Neural Comput. 2018 May;30(5):1209-1257. doi: 10.1162/NECO_a_01072. Epub 2018 Mar 22.

Abstract

The primate visual system has an exquisite ability to discriminate partially occluded shapes. Recent electrophysiological recordings suggest that response dynamics in intermediate visual cortical area V4, shaped by feedback from prefrontal cortex (PFC), may play a key role. To probe the algorithms that may underlie these findings, we build and test a model of V4 and PFC interactions based on a hierarchical predictive coding framework. We propose that probabilistic inference occurs in two steps. Initially, V4 responses are driven solely by bottom-up sensory input and are thus strongly influenced by the level of occlusion. After a delay, V4 responses combine both feedforward input and feedback signals from the PFC; the latter reflect predictions made by PFC about the visual stimulus underlying V4 activity. We find that this model captures key features of V4 and PFC dynamics observed in experiments. Specifically, PFC responses are strongest for occluded stimuli and delayed responses in V4 are less sensitive to occlusion, supporting our hypothesis that the feedback signals from PFC underlie robust discrimination of occluded shapes. Thus, our study proposes that area V4 and PFC participate in hierarchical inference, with feedback signals encoding top-down predictions about occluded shapes.

摘要

灵长类动物的视觉系统具有辨别部分遮挡形状的卓越能力。最近的电生理记录表明,受前额叶皮层(PFC)反馈塑造的视觉皮层中间区域V4的反应动力学可能起着关键作用。为了探究这些发现背后可能的算法,我们基于分层预测编码框架构建并测试了一个V4与PFC相互作用的模型。我们提出概率推理分两步进行。最初,V4的反应仅由自下而上的感觉输入驱动,因此受到遮挡程度的强烈影响。经过一段时间延迟后,V4的反应将前馈输入和来自PFC的反馈信号结合起来;后者反映了PFC对V4活动背后视觉刺激所做的预测。我们发现该模型捕捉到了实验中观察到的V4和PFC动力学的关键特征。具体而言,PFC对遮挡刺激的反应最强,而V4中的延迟反应对遮挡不太敏感,这支持了我们的假设,即来自PFC的反馈信号是对遮挡形状进行稳健辨别的基础。因此,我们的研究提出V4区域和PFC参与分层推理,反馈信号编码关于遮挡形状的自上而下的预测。

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