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IFSDA: An intuitionistic fuzzy set-based data aggregation approach for software maintainability evaluation

机译:IFSDA:一种基于直觉模糊集的数据聚合方法,用于软件可维护性评估

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The software maintainability which is an important part of software quality and trustworthiness has always been a hot topic in software engineering domain. The measurements of the software are multi-source and heterogeneous data, which result in big challenges on data aggregation for software maintainability evaluation. In this paper, an Intuitionistic Fuzzy Set-based Data Aggregation (IFSDA) approach is developed to evaluate the software maintainability. In order to unify the heterogeneous measurements, a Grade Mapping method is proposed to transform them to the membership function and the non-membership function based on Intuitionistic Fuzzy Set (IFS). The Einstein operation-based aggregation algorithm is applied to aggregate the measurements from the lower level to the higher level under the software maintainability index system. In the experiments, 880 versions of Linux kernels are collected and evaluated to test the IFSDA approach and the maintainability evolution of the Linux kernels can be studied from the experiment results and analysis.
机译:作为软件质量和可信度的重要组成部分的软件可维护性一直是软件工程领域的热门话题。该软件的度量是多源数据和异构数据,这给用于软件可维护性评估的数据聚合带来了巨大挑战。本文提出了一种基于直觉模糊集的数据聚合(IFSDA)方法来评估软件的可维护性。为了统一异构度量,提出了一种基于直觉模糊集(IFS)的等级映射方法,将其转换为隶属度函数和非隶属度函数。在软件可维护性指标系统下,基于爱因斯坦操作的聚合算法适用于从较低级别到较高级别的测量值聚合。在实验中,收集并评估了880版本的Linux内核以测试IFSDA方法,并且可以从实验结果和分析中研究Linux内核的可维护性演变。

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