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An attention-gating recurrent working memory architecture for emergent speech representation

机译:紧急语音表示的注意门限循环工作记忆体系结构

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This paper describes an attention-gating recurrent self-organising map approach for emergent speech representation. Inspired by evidence from human cognitive processing, the architecture combines two main neural components. The first component, the attention-gating mechanism, uses actor-critic learning to perform selective attention towards speech. Through this selective attention approach, the attention-gating mechanism controls access to working memory processing. The second component, the recurrent self-organising map memory, develops a temporal-distributed representation of speech using phone-like structures. Representing speech in terms of phonetic features in an emergent self-organised fashion, according to research on child cognitive development, recreates the approach found in infants. Using this representational approach, in a fashion similar to infants, should improve the performance of automatic recognition systems through aiding speech segmentation and fast word learning.
机译:本文介绍了一种用于紧急语音表示的注意门控循环自组织映射方法。受人类认知过程的证据启发,该架构结合了两个主要的神经成分。第一个组件是注意力控制机制,它使用行为者批判性学习对语音进行选择性的注意力。通过这种选择性注意方法,注意门控机制可以控制对工作内存处理的访问。第二个组件是循环自组织地图存储器,它使用类似于电话的结构开发了语音的时间分布表示。根据对儿童认知发展的研究,以语音自组织的方式以语音特征来表示语音,从而重现了婴儿发现的方法。使用这种代表性方法的方式类似于婴儿,应通过辅助语音分割和快速的单词学习来提高自动识别系统的性能。

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