一种基于知识的自动解释性能模型结果的方法

R. Goettge, E. Brehm, W. L. McCoy
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引用次数: 2

摘要

用于评估复杂的时间关键型计算机系统性能的模型可以产生大量的数据。本文讨论了基于知识的系统与绩效模型的集成,以产生基于知识的绩效评估系统,该系统提供模型结果的自动解释。提出了一个三阶段解释概念模型。探讨了开发基于知识的绩效评估系统的设计方案。描述了自动解释、设计表示和性能模型之间的关键依赖关系,并讨论了使用因果因子概念进行问题识别的基于阈值的策略。一个名为PEDAS的原型系统说明了作者的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A knowledge-based approach to automated interpretation of performance model results
Models used to evaluate the performance of complex time-critical computer systems can produce voluminous amounts of data. The paper discusses the integration of knowledge-based systems with performance models to produce knowledge-based performance evaluation systems that provide automated interpretation of model results. A three stage conceptual model of interpretation is developed. Design alternatives for developing knowledge-based performance evaluation systems are explored. The critical dependencies among automated interpretation, design representation, and performance models are described, and a threshold-based strategy for problem identification using the notion of causal factoring is discussed. A prototype system called PEDAS illustrates the authors approaches.<>
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