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A Role for Sleep in Artificial Cognition through Deferred Restructuring of Experience in Autonomous Machines

机译:通过自主机器体验的递归重组,睡眠在人工认知中的作用

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This paper is concerned with the exploration of the benefits that can be derived within a cognitive architecture for robots through the application of nature inspired sleep related cognitive restructuring processes. To this end, the concept of Deferred Restructuring of Experience in Autonomous Machines (DREAM) is postulated and applied in the context of the Multilevel Darwinist Brain architecture. This concept implies a series of consolidation, enhancement and internal imaging based exploration processes that can be applied over the experience, in terms of models and behavioral structures, a robot has acquired in its interaction with the world during its lifetime. The result is a re-representation of all of this experience so that the robot becomes more efficient and adaptive in its subsequent interactions with the world. A couple of simple proof of concept experiments demonstrate the capabilities of the approach.
机译:本文关注的是探索通过应用自然激发的睡眠相关的认知重构过程,可以在机器人的认知体系结构中获得的好处。为此,在多层次达尔文主义大脑体系结构的背景下,假定并应用了自主机器中的递延重组体验(DREAM)的概念。这个概念意味着一系列基于整合,增强和内部成像的探索过程,这些过程可以应用于模型和行为结构方面的经验,这是机器人在其一生中与世界的互动中所获得的。结果是重新表达了所有这些经验,从而使机器人在随后与世界的互动中变得更加高效和适应。一些简单的概念验证实验证明了该方法的功能。

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