From One To Many: Simulating Groups Of Agents With Reinforcement Learning Controllers

Luiselena Casadiego,Nuria Pelechano

INTELLIGENT VIRTUAL AGENTS, IVA 2015(2015)

引用 11|浏览14
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摘要
Simulation of crowd behavior has been approached through many different methodologies, but the problem of mimicking human decisions and reactions remains a challenge for all. We propose an alternative model for simulation of pedestrian movements using Reinforcement Learning. Taking the approach of microscopic models, we train an agent to move towards a goal while avoiding obstacles. Once one agent has learned, its knowledge is transferred to the rest of the members of the group by sharing the resulting Q-Table. This results in individual behavior leading to emergent group behavior. We present a framework with states, actions and reward functions general enough to easily adapt to different environment configurations.
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关键词
Crowd simulation, Reinforcement learning
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