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Modeling spoken language acquisition with a generic cognitive architecture for associative learning

机译:对联想学习的通用认知架构建模口语习得

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Human neo-cortex can be viewed as a modality invariant system for pattern discovery and associative learning. Similarly, research in the field of distributional learning suggests that much of human language acquisition can be explained by generic statistical learning mechanisms. The current paper argues that pattern processing capabilities of the human brain can be better understood if the process of early language acquisition is modeled using an entire cognitive architecture capable of unsupervised pattern discovery and associative learning. A high-level motivation and description for generic processing principles in such architecture are given, followed by examples of our current work in the field.
机译:人类新皮质可以被视为模式发现和关联学习的模态不变系统。同样,在分布学习领域的研究表明,可以通过通用统计学习机制来解释大部分人类习得。目前的论文认为,如果使用能够无监督模式发现和联想学习的整个认知架构建模的早期语言采集的过程,可以更好地理解人大脑的模式处理能力。给出了这种架构中的通用处理原理的高级动机和描述,然后是我们当前在该领域的工作示例。

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