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一种瞬态高维几何为高效动作选择提供稳定的联合子空间。

A Transient High-dimensional Geometry Affords Stable Conjunctive Subspaces for Efficient Action Selection.

作者信息

Kikumoto Atsushi, Bhandari Apoorva, Shibata Kazuhisa, Badre David

机构信息

Department of Cognitive, Linguistic, and Psychological Sciences, Brown University, Rhode Island, U.S.

RIKEN Center for Brain Science, Wako, Saitama, Japan.

出版信息

bioRxiv. 2024 Aug 31:2023.06.09.544428. doi: 10.1101/2023.06.09.544428.

Abstract

Flexible action selection requires cognitive control mechanisms capable of mapping the same inputs to different output actions depending on the context. From a neural state-space perspective, this requires a control representation that separates similar input neural states by context. Additionally, for action selection to be robust and time-invariant, information must be stable in time, enabling efficient readout. Here, using EEG decoding methods, we investigate how the geometry and dynamics of control representations constrain flexible action selection in the human brain. Participants performed a context-dependent action selection task. A forced response procedure probed action selection different states in neural trajectories. The result shows that before successful responses, there is a transient expansion of representational dimensionality that separated conjunctive subspaces. Further, the dynamics stabilizes in the same time window, with entry into this stable, high-dimensional state predictive of individual trial performance. These results establish the neural geometry and dynamics the human brain needs for flexible control over behavior.

摘要

灵活的动作选择需要认知控制机制,这种机制能够根据上下文将相同的输入映射到不同的输出动作。从神经状态空间的角度来看,这需要一种控制表征,通过上下文将相似的输入神经状态区分开来。此外,为了使动作选择稳健且具有时间不变性,信息必须在时间上保持稳定,以便能够高效地读出。在这里,我们使用脑电图解码方法,研究控制表征的几何结构和动力学如何在人类大脑中约束灵活的动作选择。参与者执行了一项依赖上下文的动作选择任务。一种强制反应程序探测了神经轨迹中动作选择的不同状态。结果表明,在成功做出反应之前,存在一个表征维度的短暂扩展,它将联合子空间区分开来。此外,动力学在同一时间窗口内稳定下来,进入这种稳定的高维状态可预测个体试验的表现。这些结果确立了人类大脑对行为进行灵活控制所需的神经几何结构和动力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/88f4/11422944/f55f367522ca/nihpp-2023.06.09.544428v2-f0001.jpg

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