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大脑中的高效、持续和广义学习——心智图 2.0 的神经机制。

Efficient, continual, and generalized learning in the brain - neural mechanism of Mental Schema 2.0.

机构信息

International Research Center for Neurointelligence (WPI-IRCN), The University of Tokyo Institutes for Advanced Study, The University of Tokyo, Tokyo 113-0033, Japan.

Department of Neurosurgery, The University of Tokyo, Tokyo 113-0033, Japan.

出版信息

Rev Neurosci. 2023 Mar 27;34(8):839-868. doi: 10.1515/revneuro-2022-0137. Print 2023 Dec 15.

Abstract

There has been tremendous progress in artificial neural networks (ANNs) over the past decade; however, the gap between ANNs and the biological brain as a learning device remains large. With the goal of closing this gap, this paper reviews learning mechanisms in the brain by focusing on three important issues in ANN research: efficiency, continuity, and generalization. We first discuss the method by which the brain utilizes a variety of self-organizing mechanisms to maximize learning efficiency, with a focus on the role of spontaneous activity of the brain in shaping synaptic connections to facilitate spatiotemporal learning and numerical processing. Then, we examined the neuronal mechanisms that enable lifelong continual learning, with a focus on memory replay during sleep and its implementation in brain-inspired ANNs. Finally, we explored the method by which the brain generalizes learned knowledge in new situations, particularly from the mathematical generalization perspective of topology. Besides a systematic comparison in learning mechanisms between the brain and ANNs, we propose "Mental Schema 2.0," a new computational property underlying the brain's unique learning ability that can be implemented in ANNs.

摘要

在过去的十年中,人工神经网络 (ANNs) 取得了巨大的进展;然而,ANNs 与作为学习设备的生物大脑之间的差距仍然很大。本文旨在缩小这一差距,通过关注 ANN 研究中的三个重要问题:效率、连续性和泛化,来回顾大脑中的学习机制。我们首先讨论了大脑利用各种自组织机制来最大化学习效率的方法,重点介绍了大脑自发活动在塑造突触连接以促进时空学习和数值处理方面的作用。然后,我们研究了使大脑能够进行终身持续学习的神经机制,重点关注睡眠期间的记忆重放及其在类脑 ANN 中的实现。最后,我们探讨了大脑在新情况下泛化所学知识的方法,特别是从拓扑学的数学泛化角度。除了在学习机制方面对大脑和 ANN 进行系统比较之外,我们还提出了“心智模式 2.0”,这是大脑独特学习能力的一个新的计算特性,可以在 ANN 中实现。

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