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B2DI a bayesian BDI agent model with causal belief updating based on MSBN

机译:B2DI:基于MSBN的因果信念更新的贝叶斯BDI代理模型

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摘要

In this paper, we introduce B2DI model that extends BDI model to perform Bayesian inference under uncertainty. For scalability and flexibility purposes, Multiply Sectioned Bayesian Network (MSBN) technology has been selected and adapted to BDI agent reasoning. A belief update mechanism has been defined for agents, whose belief models are connected by public shared beliefs, and the certainty of these beliefs is updated based on MSBN. The classical BDI agent architecture has been extended in order to manage uncertainty using Bayesian reasoning. The resulting extended model, so-called B2DI, proposes a new control loop. The proposed B2DI model has been evaluated in a network fault diagnosis scenario. The evaluation has compared this model with two previously developed agent models. The evaluation has been carried out with a real testbed diagnosis scenario using JADEX. As a result, the proposed model exhibits significant improvements in the cost and time required to carry out a reliable diagnosis.
机译:在本文中,我们介绍了B2DI模型,该模型扩展了BDI模型以在不确定性下执行贝叶斯推理。出于可伸缩性和灵活性的目的,已选择了多重分段贝叶斯网络(MSBN)技术并将其应用于BDI代理推理。已经为代理定义了一种信念更新机制,该代理的信念模型通过公共共享的信念进行连接,并且基于MSBN更新这些信念的确定性。为了使用贝叶斯推理管理不确定性,对经典BDI代理体系结构进行了扩展。由此产生的扩展模型,即所谓的B2DI,提出了一个新的控制环。提出的B2DI模型已在网络故障诊断方案中进行了评估。评估已将此模型与两个以前开发的代理模型进行了比较。评估是使用JADEX在真实的测试平台诊断方案中进行的。结果,提出的模型在执行可靠诊断所需的成本和时间上显示出显着的改进。

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