NOISE DETECTION IN SOFTWARE REQUIREMENTS SPECIFICATION DOCUMENT USING SPECTRAL CLUSTERING

P. Manek, D. Siahaan
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引用次数: 4

Abstract

Requirements engineering phase in software development resulting in a SRS (Software Requirements Specification) document. The use of natural language approach in generating such document has some drawbacks that caused 7 common mistakes among the engineer which had been formulated by Meyer as "The 7 sins of specifier". One of the 7 common mistakes is noise. This study attempted to detect noise in software requirements with spectral clustering. The clustering algorithm working on fewer dimensions compared to others. The resulting kappa coefficient is 0.4426 . The result showed that the consistency between noise prediction and noise assessment made by three annotators is still low.
用谱聚类方法检测软件需求规范文档中的噪声
软件开发中的需求工程阶段,产生SRS(软件需求规范)文件。在生成此类文件时使用自然语言方法存在一些缺陷,这导致了工程师中的7个常见错误,Meyer将其表述为“说明符的7个罪过”。7个常见错误之一是噪音。本研究试图通过频谱聚类来检测软件需求中的噪声。与其他算法相比,聚类算法在更少的维度上工作。得到的kappa系数为0.4426。结果表明,三个注释器所做的噪声预测和噪声评估之间的一致性仍然很低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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