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Spatial Concept Learning: A Spiking Neural Network Implementation in Virtual and Physical Robots

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This paper proposes an artificial spiking neural network (SNN) sustaining the cognitive abstract process of spatial concept learning, embedded in virtual and real robots. Based on an operant conditioning procedure,… Click to show full abstract

This paper proposes an artificial spiking neural network (SNN) sustaining the cognitive abstract process of spatial concept learning, embedded in virtual and real robots. Based on an operant conditioning procedure, the robots learn the relationship of horizontal/vertical and left/right visual stimuli, regardless of their specific pattern composition or their location on the images. Tests with novel patterns and locations were successfully completed after the acquisition learning phase. Results show that the SNN can adapt its behavior in real time when the rewarding rule changes.

Keywords: spatial concept; neural network; spiking neural; concept learning

Journal Title: Computational Intelligence and Neuroscience
Year Published: 2019

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