面向认知架构的类人表征学习

Steven Jones, Peter Lindes
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引用次数: 0

摘要

类人学习包括从体现传感器数据流中学习概念的能力。与巴萨罗等人之前关于认知和感知共享一个共同表征系统的观点相呼应,我们建议对认知的共同模型进行增补。该附录提出了一种同时学习语义记忆和感知的方法,它绕过了工作记忆,利用并行处理来学习刻意推理之外的概念。我们的目标是为如何扩展一类认知架构提供一个总纲,以便在认知和代理的体现之间实现一个更像人类的界面,而该界面的一个关键方面是,由于学习,它是动态的。
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Toward Human-Like Representation Learning for Cognitive Architectures
Human-like learning includes an ability to learn concepts from a stream of embodiment sensor data. Echoing previous thoughts such as those from Barsalou that cognition and perception share a common representation system, we suggest an addendum to the common model of cognition. This addendum poses a simultaneous semantic memory and perception learning that bypasses working memory, and that uses parallel processing to learn concepts apart from deliberate reasoning. The goal is to provide a general outline for how to extend a class of cognitive architectures to implement a more human-like interface between cognition and embodiment of an agent, where a critical aspect of that interface is that it is dynamic because of learning.
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