基于图论的计算机网络故障自动识别新方法

Yijiao Yu, Qin Liu, L. Tan, Debao Xiao
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引用次数: 5

摘要

在大型计算机网络中,隔离主要故障源是一项具有挑战性的任务。本文提出了一种新的网络故障诊断建模方法。利用基于可达定理的故障自动识别模型,设计了一种故障自动识别算法,并对其性能和有效性进行了分析。为了判断给定故障源的故障效果与测试源的故障效果是否一致,提出了一种高效的FFEAJ算法。由于DAFMA和FFEAJ都是基于矩阵和布尔运算,因此DAFMA可以在计算机上自动执行。最后,对四种典型的故障效应进行了分类,并介绍了DAFAM的工作步骤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel automated fault identification approach in computer networks based on graph theory
In large computer network, isolation of the primary source of failure is a challenging task. In this paper, we present a novel approach of modeling network fault diagnosis. With the model based on reachable theorems, we design an automated fault identification algorithm and analyze its performance and validity named as DAFMA. To judge the consistency between the fault effect of the given failure sources and the testing one, an efficient algorithm is also proposed named as FFEAJ. DAFMA can be carried out automatically in computer because both DAFMA and FFEAJ are based on matrix and Boolean operations. Finally, to illustrate the details of DAFAM, four classical fault effects are classified and the working steps of DAFAM are described.
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