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R~4 Model for Case-Based Reasoning and Its Application for Software Fault Prediction

机译:基于案例的推理的R〜4模型及其在软件故障预测中的应用

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Making R4 model effective and efficient I have introduced some new features, i.e., renovation of knowledgebase (KBS) and reducing the maintenance cost by removing the duplicate record from the KBS. Renovation of knowledgebase is the process of removing duplicate record stored in knowledgebase and adding world new problems along with world new solutions. This paper explores case-based reasoning and its applications for software quality improvement through early prediction of error patterns. It summarizes a variety of techniques for software quality prediction in the domain of software engineering. The system predicts the error level with respect to LOC and with respect to development time, and both affects the quality level. This paper also reviews four existing models of case-based reasoning (CBR). The paper presents a work in which I have expanded our previous work (Rashid et al., 2012). I have used different similarity measures to find the best method that increases reliability. The present work is also credited through introduction of some new terms like coefficient of efficiency, i.e., developer's ability.
机译:为了使R4模型高效有效,我介绍了一些新功能,即,知识库的更新(KBS)和通过从KBS中删除重复记录来降低维护成本的功能。知识库的更新是指删除存储在知识库中的重复记录,并添加新问题和新解决方案的过程。本文探讨了基于案例的推理及其通过早期预测错误模式来提高软件质量的应用。它总结了软件工程领域中用于软件质量预测的多种技术。系统根据LOC和开发时间预测错误级别,并且两者都会影响质量级别。本文还回顾了四个基于案例的推理(CBR)的现有模型。本文介绍了我在之前的工作中所做的扩展(Rashid等,2012)。我使用了不同的相似性度量来找到提高可靠性的最佳方法。通过引入一些新的术语,例如效率系数,即开发人员的能力,也可以归功于当前的工作。

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