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MAgent: A Many-Agent Reinforcement Learning Platform for Artificial Collective Intelligence

机译:品种:人工集体智能的许多代理增强学习平台

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摘要

We introduce MAgent, a platform to support research and development of many-agent reinforcement learning. Unlike previous research platforms on single or multi-agent reinforcement learning, MAgent focuses on supporting the tasks and the applications that require hundreds to millions of agents. Within the interactions among a population of agents, it enables not only the study of learning algorithms for agents' optimal polices, but more importantly, the observation and understanding of individual agent's behaviors and social phenomena emerging from the AI society, including communication languages, leaderships, altruism. MAgent is highly scalable and can host up to one million agents on a single GPU server. MAgent also provides flexible configurations for AI researchers to design their customized environments and agents. In this demo, we present three environments designed on MAgent and show emerged collective intelligence by learning from scratch.
机译:我们介绍了一个支持的平台,支持许多代理强化学习的研发。 与以前的单次或多助理强化学习的研究平台不同,品种侧重于支持需要数百到数百万代理的任务和应用程序。 在代理人群体之间的相互作用中,它不仅能够研究代理商的最佳政策的学习算法,但更重要的是,从AI社会出现的个人代理人的行为和社会现象,包括通信语言,包括通信语言 ,利他主义。 品种高度可扩展,可以在单个GPU服务器上举办多百万个代理。 NOTEN还为AI研究人员提供灵活配置,以设计定制的环境和代理商。 在这个演示中,我们展示了一个在美的内容设计的环境,并通过从头开始学习出现的集体智能。

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