Acquiring Rules for Rules: Neuro-Dynamical Systems Account for Meta-Cognition

Author:

Maniadakis Michail1,Tani Jun1

Affiliation:

1. Laboratory for Behavior and Dynamic Cognition, Brain Science Institute, RIKEN,

Abstract

Both animals and humans use meta-rules in their daily life, in order to adapt their behavioral strategies to changing environmental situations. Typically, the term meta-rule encompasses those rules that are applied to rules themselves. In cognitive science, conventional approaches for designing meta-rules follow human hardwired architectures. In contrast to previous approaches, this study employs evolutionary processes to explore neuronal mechanisms accounting for meta-level rule switching. In particular, we performed a series of experiments with a simulated robot that has to learn to switch between different behavioral rules in order to accomplish given tasks. Continuous time recurrent neural networks (CTRNN) controllers with either a fully connected or a bottleneck architecture were examined. The results showed that different rules are represented by separate self-organized attractors, while rule switching is enabled by the transitions among attractors. Furthermore, the results showed that neural network division into a lower sensorimotor level and a higher cognitive level enhances the performance of the robot in the given tasks. Additionally, meta-cognitive rule processing is significantly supported by the embodiment of the controller and the lower level sensorimotor properties of environmental interaction.

Publisher

SAGE Publications

Subject

Behavioral Neuroscience,Experimental and Cognitive Psychology

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Self-healing and self-repairing technologies;The International Journal of Advanced Manufacturing Technology;2013-06-11

2. Self-organizing high-order cognitive functions in artificial agents: Implications for possible prefrontal cortex mechanisms;Neural Networks;2012-09

3. Metagnostic Deductive Question Answering with Explanation from Texts;Lecture Notes in Computer Science;2011

4. Studies of Symbols from "Robot Science";Journal of the Robotics Society of Japan;2010

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