Multi-agent Architecture for Heterogeneous Reasoning under Uncertainty Combining MSBN and Ontologies in Distributed Network Diagnosis

Álvaro Carrera, C. Iglesias
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引用次数: 5

Abstract

This article proposes a MAS architecture for network diagnosis under uncertainty. Network diagnosis is divided into two inference processes: hypothesis generation and hypothesis confirmation. The first process is distributed among several agents based on a MSBN, while the second one is carried out by agents using semantic reasoning. A diagnosis ontology has been defined in order to combine both inference processes. To drive the deliberation process, dynamic data about the influence of observations are taken during diagnosis process. In order to achieve quick and reliable diagnoses, this influence is used to choose the best action to perform. This approach has been evaluated in a P2P video streaming scenario. Computational and time improvements are highlight as conclusions.
分布式网络诊断中结合MSBN和本体的不确定异构推理多智能体体系结构
提出了一种用于不确定情况下网络诊断的MAS体系结构。网络诊断分为假设生成和假设确认两个推理过程。第一个过程基于MSBN分布在多个智能体之间,第二个过程由智能体使用语义推理进行。为了将两个推理过程结合起来,定义了诊断本体。为了驱动审议过程,在诊断过程中采集了有关观测影响的动态数据。为了实现快速、可靠的诊断,利用这一影响来选择最佳的治疗措施。这种方法已经在P2P视频流场景中进行了评估。计算和时间的改进是结论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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