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首页> 外文期刊>International Journal of Computer Applications in Technology >A hybrid collaborative filtering recommendation algorithm for requirements elicitation
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A hybrid collaborative filtering recommendation algorithm for requirements elicitation

机译:一种有关诱导的混合协作过滤推荐算法

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摘要

Requirements elicitation is one of the most critical and difficult tasks in software development. Requirements reuse has shown to be an effective and efficient elicitation technique that can enhance the quality of the requirements elicitation process and, as a result, lead to a project's success. However, the information overload problem, which is caused by the rapidly growing number of reusable software requirements in large requirements repositories, hinders the effectiveness of the requirements reuse process. Recommender systems proved to be a well-known solution to such problems. This paper focuses on the adoption of recommender systems to mitigate the problem of information overload that is inherent in the requirements elicitation process, specifically by assisting requirement engineers in retrieving relevant reusable requirements from large-scale requirements repositories. The validation results on the RALIC dataset illustrate that the proposed algorithm outperforms and mitigates the drawbacks of the benchmark collaborative filtering-based recommendation approaches.
机译:要求引出是软件开发中最关键和最困难的任务之一。要求重复使用已显示是一种有效且高效的纺织技术,可以提高需求阐释过程的质量,并因此导致项目的成功。但是,信息过载问题是由大型要求存储库中的可重复使用的可重复使用的软件需求造成的,阻碍了重复使用过程的有效性。推荐人被证明是对这些问题的众所周知的解决方案。本文侧重于采用推荐制度,以减轻所需的信息过载问题,以便通过协助要求工程师从大规模要求存储库中检索相关的可重复使用要求。 Ralic DataSet上的验证结果说明了所提出的算法优于基于基于基于基准协作滤波的推荐方法的缺点。

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