Some experiments with a hybrid model for learning sequential decision making

To deal with sequential decision tasks we present a learning model Clarion which is a hybrid connectionist model consisting of both localist and distributed represen tations based on the two level approach proposed in Sun The model learns and utilizes procedural and declarative knowledge tapping into the synergy of the two types of processes It uni es neural reinforcement and symbolic methods to perform on line bottom up learning Experiments in various situations are reported that shed light on the working of the model..
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