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Hybrid Learning System for Adaptive Complex Event Processing

机译:自适应复杂事件处理的混合学习系统

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In today's security systems, the use of complex rule bases for information aggregation is more and more frequent. This does not however eliminate the possibility of wrong detections that could occur when the rule base is incomplete or inadequate. In this paper, a machine learning method is proposed to adapt complex rule bases to environmental changes and to enable them to correct design errors. In our study, complex rules have several levels of structural complexity, that leads us to propose an approach to adapt the rule base by means of an Association Rule mining algorithm coupled with Inductive logic programming for rule induction.
机译:在当今的安全系统中,越来越多地使用复杂的规则库进行信息聚合。但是,这不能消除规则库不完整或不适当时可能发生错误检测的可能性。本文提出了一种机器学习方法,以使复杂的规则库适应环境变化并使其能够纠正设计错误。在我们的研究中,复杂规则具有多个层次的结构复杂性,这使我们提出了一种通过关联规则挖掘算法和归纳逻辑编程进行规则归纳的方法来适应规则库的方法。

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