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Early Software Quality Prediction Based on Software Requirements Specification Using Fuzzy Inference System

机译:基于软件需求规范的模糊推理的早期软件质量预测

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Software Requirements Specification (SRS) is the key fundamental document formally listing down the customer expectations from the software to be built. Any weakness or fault injected at this stage in the requirements is expected to ripple towards the following phases of software development life cycle resulting in development of a software system of poor quality. Software quality prediction promises to raise alarms about the quality of the end product at earlier stages. It becomes more challenging as we move earlier in stages because of limited information is available at earlier stages. Therefore little effort has been put in literature to predict software quality at SRS stage. This position paper presents a novel approach of prediction of software quality using SRS. SRS document is converted into a graph and different parameters including readability index, complexity, size and an estimation of coupling are extracted. These parameters are fed into a Fuzzy Inferencing System (FIS) to predict the quality of the end product. The proposed model has been evaluated on a sample of student projects and has shown reasonable performance.
机译:软件需求规范(SRS)是关键的基本文件,正式列出了客户对要构建的软件的期望。在此阶段需求中注入的任何弱点或缺陷都有望波及到软件开发生命周期的以下阶段,从而导致质量较差的软件系统的开发。软件质量预测有望在早期阶段就最终产品的质量发出警报。由于我们在早期阶段只能获得有限的信息,因此随着阶段性发展而变得越来越具有挑战性。因此,在文献中很少投入精力来预测SRS阶段的软件质量。该立场文件提出了一种使用SRS预测软件质量的新颖方法。将SRS文档转换为图形,并提取不同的参数,包括可读性指标,复杂性,大小和耦合估计。这些参数被输入到模糊推理系统(FIS)中,以预测最终产品的质量。拟议的模型已经在学生项目的样本上进行了评估,并显示出合理的性能。

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