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  1. 原著論文

Stable Neural Population Dynamics in the Regression Subspace for Continuous and Categorical Task Parameters in Monkeys.

https://repo.qst.go.jp/records/2000838
https://repo.qst.go.jp/records/2000838
72ff5867-0652-420b-b37d-601d972d6dae
アイテムタイプ 学術雑誌論文 / Journal Article(1)
公開日 2025-01-08
タイトル
タイトル Stable Neural Population Dynamics in the Regression Subspace for Continuous and Categorical Task Parameters in Monkeys.
言語 en
言語
言語 eng
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_6501
資源タイプ journal article
著者 He Chen

× He Chen

He Chen

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Jun Kunimatsu

× Jun Kunimatsu

Jun Kunimatsu

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Tomomichi Oya

× Tomomichi Oya

Tomomichi Oya

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Yuri Imaizumi

× Yuri Imaizumi

Yuri Imaizumi

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Yukiko Hori

× Yukiko Hori

Yukiko Hori

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Masayuki Matsumoto

× Masayuki Matsumoto

Masayuki Matsumoto

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Takafumi Minamimoto

× Takafumi Minamimoto

Takafumi Minamimoto

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Yuji Naya

× Yuji Naya

Yuji Naya

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Hiroshi Yamada

× Hiroshi Yamada

Hiroshi Yamada

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抄録
内容記述タイプ Abstract
内容記述 Neural population dynamics provide a key computational framework for understanding information processing in the sensory, cognitive, and motor functions of the brain. They systematically depict complex neural population activity, dominated by strong temporal dynamics as trajectory geometry in a low-dimensional neural space. However, neural population dynamics are poorly related to the conventional analytical framework of single-neuron activity, the rate-coding regime that analyzes firing rate modulations using task parameters. To link the rate-coding and dynamic models, we developed a variant of state-space analysis in the regression subspace, which describes the temporal structures of neural modulations using continuous and categorical task parameters. In macaque monkeys, using two neural population datasets containing either of two standard task parameters, continuous and categorical, we revealed that neural modulation structures are reliably captured by these task parameters in the regression subspace as trajectory geometry in a lower dimension. Furthermore, we combined the classical optimal-stimulus response analysis (usually used in rate-coding analysis) with the dynamic model and found that the most prominent modulation dynamics in the lower dimension were derived from these optimal responses. Using those analyses, we successfully extracted geometries for both task parameters that formed a straight geometry, suggesting that their functional relevance is characterized as a unidimensional feature in their neural modulation dynamics. Collectively, our approach bridges neural modulation in the rate-coding model and the dynamic system, and provides researchers with a significant advantage in exploring the temporal structure of neural modulations for pre-existing datasets.
書誌情報 eNeuro

巻 10, 号 7, p. 0016-23, 発行日 2023-06
出版者
出版者 Society for Neuroscience
ISSN
収録物識別子タイプ ISSN
収録物識別子 2373-2822
PubMed番号
識別子タイプ PMID
関連識別子 37385727
DOI
識別子タイプ DOI
関連識別子 10.1523/ENEURO.0016-23.2023
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