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A Novel Meta Learning System and Its Application to Optimization of Computing Agents' Results

Publication at Faculty of Mathematics and Physics |
2013

Abstract

We present a description of our multi-agent system where computational intelligence methods are embodied as software agents. This system is designed in order to allow easy experiments with learning, meta learning, gathering experience based on previous computations, and recommending suitable methods for particular data.

The architecture of the system is presented and its meta learning abilities are demonstrated on a set of experiments with neural network models and both evolutionary and local search heuristics.