A temporal reinforcement learning architecture for problems with hidden-state
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This report describes the method of constructing temporal representations for hidden-state problems in TRACA (Temporal Reinforcement Learning and Classification Architecture). The hidden-state problem is described followed by a description of the structures TRACA develops for a sample letter prediction problem. The sample prediction problem is sufficient to demonstrate TRACAs ability to represent problems with hidden-state. The development of TRACA's representational structures is presented step-by-step followed by an explanation of the final actual results produced by TRACA for the sample problem.
创建时间:
2022-08-31




