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A RULE-BASED SOFTWARE QUALITY CLASSIFICATION MODEL

机译:基于规则的软件质量分类模型

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摘要

A rule-based classification model is presented to identify high-risk software modules. It utilizes the power of rough set theory to reduce the number of attributes, and the equal frequency binning algorithm to partition the values of the attributes. As a result, a set of conjuncted Boolean predicates are formed. The model is inherently influenced by the practical needs of the system being modeled, thus allowing the analyst to determine which rules are to be used for classifying the fault-prone and not fault-prone modules. The proposed model also enables the analyst to control the number of rules that constitute the model. Empirical validation of the model is accomplished through a case study of a large legacy telecommunications system. The ease of rule interpretation and the transparency of the functional aspects of the model are clearly demonstrated. It is concluded that the new model is effective in achieving the software quality classification.
机译:提出了基于规则的分类模型来识别高风险软件模块。它利用粗糙集理论的力量来减少属性的数量,并利用等频率合并算法来划分属性的值。结果,形成了一组布尔布尔谓词。该模型固有地受要建模的系统的实际需求的影响,从而使分析人员可以确定将哪些规则用于对易故障模块和不易故障模块进行分类。提出的模型还使分析师能够控制构成模型的规则数量。该模型的经验验证是通过对大型传统电信系统进行案例研究来完成的。清楚地说明了规则解释的简便性和模型功能方面的透明性。结论是,新模型可有效实现软件质量分类。

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