2022
DOI: 10.48550/arxiv.2201.10266
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Combining Commonsense Reasoning and Knowledge Acquisition to Guide Deep Learning in Robotics

Abstract: Algorithms based on deep network models are being used for many pattern recognition and decisionmaking tasks in robotics and AI. Training these models requires a large labeled dataset and considerable computational resources, which are not readily available in many domains. Also, it is difficult to explore the internal representations and reasoning mechanisms of these models. As a step towards addressing the underlying knowledge representation, reasoning, and learning challenges, the architecture described in … Show more

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