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Mapping sensorimotor sequences to word sequences: A connectionist model of language acquisition and sentence generation

机译:将感觉运动序列映射到单词序列:语言习得和句子生成的连接模型

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In this article we present a neural network model of sentence generation. The network has both technical and conceptual innovations. Its main technical novelty is in its semantic representations: the messages which form the input to the network are structured as sequences, so that message elements are delivered to the network one at a time. Rather than learning to linearise a static semantic representation as a sequence of words, our network rehearses a sequence of semantic signals, and learns to generate words from selected signals. Conceptually, the network's use of rehearsed sequences of semantic signals is motivated by work in embodied cognition, which posits that the structure of semantic representations has its origin in the serial structure of sensorimotor processing. The rich sequential structure of the network's semantic inputs also allows it to incorporate certain Chomskyan ideas about innate syntactic knowledge and parameter-setting, as well as a more empiricist account of the acquisition of idiomatic syntactic constructions.
机译:在本文中,我们提出了句子生成的神经网络模型。该网络具有技术和概念上的创新。它的主要技术新颖之处在于它的语义表示形式:构成网络输入的消息被构造为序列,因此消息元素一次传递到网络。我们的网络不是学习将静态语义表示线性化为单词序列,而是排练一系列语义信号,并学习从选定的信号中生成单词。从概念上讲,网络对语义信号序列的使用是通过体现认知的工作来推动的,这假定语义表示的结构起源于感觉运动处理的串行结构。网络语义输入的丰富顺序结构还使它可以合并某些关于自然句法知识和参数设置的Chomskyan思想,以及对习语句法结构习得的更为经验主义的解释。

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