趋同区情景记忆的能力

Mark Moll, R. Miikkulainen, Jonathan Abbey
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引用次数: 7

摘要

人类的情景记忆为日常经历提供了看似无限的存储空间,而一个检索系统允许我们通过部分激活它们的组成部分来访问这些经历。本文提出了一个情景记忆的计算模型,灵感来自达马西奥的趋同区思想。该模型由感知特征映射层和绑定层组成。感知特征模式在绑定层中进行粗编码,并存储在层与层之间的权重中。存储特征的部分激活激活绑定模式,绑定模式反过来重新激活整个存储模式。最坏情况分析表明,在实际大小的层中,模型的记忆容量比模型中的单元数量大几倍,并且可以解释人类情景记忆的大容量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The capacity of convergence-zone episodic memory
Human episodic memory provides a seemingly unlimited storage for everyday experiences, and a retrieval system that allows us to access the experiences with partial activation of their components. This paper presents a computational model of episodic memory inspired by Damasio's idea of convergence zones. The model consists of a layer of perceptual feature maps and a binding layer. A perceptual feature pattern is coarse coded in the binding layer, and stored on the weights between layers. A partial activation of the stored features activates the binding pattern which in turn reactivates the entire stored pattern. A worst-case analysis shows that with realistic-size layers, the memory capacity of the model is several times larger than the number of units in the model, and could account for the large capacity of human episodic memory.<>
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