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Lexical is as lexical does: computational approaches to lexical representation

机译:词法与词法一样:词法表示的计算方法

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摘要

In much of neuroimaging and neuropsychology, regions of the brain have been associated with ‘lexical representation’, with little consideration as to what this cognitive construct actually denotes. Within current computational models of word recognition, there are a number of different approaches to the representation of lexical knowledge. Structural lexical representations, found in original theories of word recognition, have been instantiated in modern localist models. However, such a representational scheme lacks neural plausibility in terms of economy and flexibility. Connectionist models have therefore adopted distributed representations of form and meaning. Semantic representations in connectionist models necessarily encode lexical knowledge. Yet when equipped with recurrent connections, connectionist models can also develop attractors for familiar forms that function as lexical representations. Current behavioural, neuropsychological and neuroimaging evidence shows a clear role for semantic information, but also suggests some modality- and task-specific lexical representations. A variety of connectionist architectures could implement these distributed functional representations, and further experimental and simulation work is required to discriminate between these alternatives. Future conceptualisations of lexical representations will therefore emerge from a synergy between modelling and neuroscience.
机译:在大多数神经影像学和神经心理学中,大脑区域与“词汇表示”相关联,而很少考虑这种认知结构的实际含义。在当前的单词识别计算模型中,存在许多不同的词汇知识表示方法。在最初的单词识别理论中发现的结构化词汇表示形式已在现代本地主义模型中实例化。但是,这种代表性方案在经济性和灵活性方面缺乏神经上的合理性。因此,连接主义模型采用形式和意义的分布式表示。连接主义模型中的语义表示必须对词汇知识进行编码。然而,当装备有经常性的连接时,连接主义模型也可以为吸引形式提供熟悉的形式,作为词汇表述。当前的行为,神经心理学和神经影像学证据显示了语义信息的明确作用,但也提出了一些针对情态和任务的词汇表述。各种连接主义体系结构可以实现这些分布式功能表示,并且需要进一步的实验和仿真工作来区分这些替代方案。因此,未来的词汇表述概念化将源于建模与神经科学之间的协同作用。

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