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A flexible coupling approach to multi-agent planning under incomplete information

机译:信息不完全的多主体规划的灵活耦合方法

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摘要

Multi-agent planning (MAP) approaches are typically oriented at solving loosely coupled problems, being ineffective to deal with more complex, strongly related problems. In most cases, agents work under complete information, building complete knowledge bases. The present article introduces a general-purpose MAP framework designed to tackle problems of any coupling levels under incomplete information. Agents in our MAP model are partially unaware of the information managed by the rest of agents and share only the critical information that affects other agents, thus maintaining a distributed vision of the task. Agents solve MAP tasks through the adoption of an iterative refinement planning procedure that uses single-agent planning technology. In particular, agents will devise refinements through the partial-order planning paradigm, a flexible framework to build refinement plans leaving unsolved details that will be gradually completed by means of new refinements. Our proposal is supported with the implementation of a fully operative MAP system and we show various experiments when running our system over different types of MAP problems, from the most strongly related to the most loosely coupled.
机译:多主体规划(MAP)方法通常以解决松散耦合的问题为目标,这些问题对于处理更复杂,密切相关的问题无效。在大多数情况下,代理在完整的信息下工作,建立完整的知识库。本文介绍了一种通用MAP框架,旨在解决不完整信息下任何耦合级别的问题。我们的MAP模型中的业务代表部分不了解由其余业务代表管理的信息,并且仅共享影响其他业务代表的关键信息,因此维护了任务的分布式愿景。代理通过采用单代理计划技术的迭代优化计划程序来解决MAP任务。尤其是,代理商将通过部分订单计划范式来设计细化,这是一个灵活的框架,用于建立细化计划,留下未解决的细节,这些细节将通过新的细化逐步完成。我们的建议得到了完全可操作的MAP系统的实施的支持,并且在针对不同类型的MAP问题运行我们的系统时,我们展示了各种实验,从最密切相关到最松散耦合。

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