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The Hybrid Integration of Perceptual Symbol Systems and Interactive Reinforcement Learning

机译:感知符号系统和互动强化学习的杂交集成

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In order to produce robots which can interact more effectively with humans we propose that it is necessary for their cognitive processes to be grounded in the same perceptual elements as humans deal with. Perceptual Symbol Systems offer an attractive mechanism for capturing the symbolic properties of the senses and for integrating them into higher level cognitive processes. We have designed a Perceptual Symbol System where the robot learns about objects through interaction and reinforcement and have carried out experiments to assess the merits of this approach. We show that the use of human perceptual elements combined with interactive reinforcement. leads to intuitive learning and interpretable knowledge structures.
机译:为了生产可以与人类更有效地交互的机器人,我们建议他们的认知过程是在与人类交易相同的感知元素中接地的认知过程。感知符号系统提供了一种有吸引力的机制,用于捕获感官的象征性,并将它们集成到更高水平的认知过程中。我们设计了一种感知符号系统,其中机器人通过相互作用和加固来学习对象,并且已经进行了实验来评估这种方法的优点。我们表明,使用人类感知元素结合互动加固。导致直观的学习和可解释的知识结构。

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