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Computational models of working memory: putting long-term memory into context.

机译:工作记忆的计算模型:将长期记忆置于上下文中。

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Detailed computational modeling of human memory has typically been aimed at either short-term (working) memory or long-term memory in isolation. However, recent research highlights the importance of interactions between these systems for both item and order information. At the same time, computational models of both systems are beginning to converge onto a common framework in which items are associated with an evolving "context" signal and subsequently compete with one another at recall. We review some of these models, and discuss a common mechanism capable of modelling working memory and its interaction with long-term memory, focussing on memory for verbal sequences.
机译:人类记忆的详细计算模型通常针对孤立的短期(工作)记忆或长期记忆。但是,最近的研究强调了这些系统之间对于物品和订单信息进行交互的重要性。同时,两个系统的计算模型开始融合到一个共同的框架中,其中项目与不断发展的“上下文”信号相关联,随后在召回时相互竞争。我们回顾了其中一些模型,并讨论了能够对工作记忆及其与长期记忆的交互进行建模的通用机制,重点是言语序列的记忆。

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