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人类语法编码和解码的神经计算架构的绪论。

Prolegomena to a neurocomputational architecture for human grammatical encoding and decoding.

机构信息

Max Planck Institute for Psycholinguistics, PO Box 310, 6500 AH, Nijmegen, The Netherlands,

出版信息

Neuroinformatics. 2014 Jan;12(1):111-42. doi: 10.1007/s12021-013-9191-4.

Abstract

This study develops a neurocomputational architecture for grammatical processing in language production and language comprehension (grammatical encoding and decoding, respectively). It seeks to answer two questions. First, how is online syntactic structure formation of the complexity required by natural-language grammars possible in a fixed, preexisting neural network without the need for online creation of new connections or associations? Second, is it realistic to assume that the seemingly disparate instantiations of syntactic structure formation in grammatical encoding and grammatical decoding can run on the same neural infrastructure? This issue is prompted by accumulating experimental evidence for the hypothesis that the mechanisms for grammatical decoding overlap with those for grammatical encoding to a considerable extent, thus inviting the hypothesis of a single "grammatical coder." The paper answers both questions by providing the blueprint for a syntactic structure formation mechanism that is entirely based on prewired circuitry (except for referential processing, which relies on the rapid learning capacity of the hippocampal complex), and can subserve decoding as well as encoding tasks. The model builds on the "Unification Space" model of syntactic parsing developed by Vosse and Kempen (Cognition 75:105-143, 2000; Cognitive Neurodynamics 3:331-346, 2009a). The design includes a neurocomputational mechanism for the treatment of an important class of grammatical movement phenomena.

摘要

本研究开发了一种神经计算架构,用于语言产生和语言理解中的语法处理(分别为语法编码和解码)。它旨在回答两个问题。首先,在没有在线创建新连接或关联的情况下,如何在固定的预先存在的神经网络中形成自然语言语法所需的复杂在线句法结构?其次,是否可以假设语法编码和解码中看似不同的语法结构形成实例可以在同一神经基础结构上运行?这一问题是由越来越多的实验证据引起的,这些证据表明语法解码的机制在很大程度上与语法编码的机制重叠,从而引发了单一“语法编码器”的假说。本文通过提供完全基于预布线电路的句法结构形成机制的蓝图来回答这两个问题(除了依赖海马复合体快速学习能力的指代处理),并且可以支持解码和编码任务。该模型基于 Vosse 和 Kempen(Cognition 75:105-143, 2000; Cognitive Neurodynamics 3:331-346, 2009a)开发的句法分析“统一空间”模型。该设计包括用于处理一类重要语法移动现象的神经计算机制。

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