Norm Augmented Reinforcement Learning Agents With Synthesized Normative Rules
Mohd Rashdan Abdul Kadir,
Ali Selamat,
Ondrej Krejcar
Abstract:The dynamic deontic (DD) is a norm synthesis framework that extracts normative rules from reinforcement learning (RL), however it was not designed to be applied in agent coordination. This study proposes a norm augmented reinforcement learning framework (NARLF) that extends said model to include a norm deliberation mechanism for learned norms re-imputation for norm biased decision-making RL agents. This study aims to test the effects of synthesized norms applied on-line and off-line on agent learning performan… Show more
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