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A systematic literature review on requirement prioritization techniques and their empirical evaluation

机译:有关需求优先排序技术及其经验评估的系统文献综述

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[Context and Motivation] Many requirements prioritization approaches have been proposed, however not all of them have been investigated empirically in real-life settings. As a result, our knowledge of their applicability and actual use is incomplete. [Question/problem] A 2007 systematic review on requirements prioritization mapped out the landscape of proposed prioritization approaches and their prioritization criteria. To understand how this sub-field of requirements engineering has developed since 2007 and what evidence has been accumulated through empirical evaluations, we carried out a literature review that takes as input publications published between 2007 and 2019. [Principle ideas/results] We evaluated 102 papers that proposed and/or evaluated requirements prioritization methods. Our results show that the newly proposed requirements prioritization methods tend to use as basis fuzzy logic and machine learning algorithms. We also concluded that the Analytical Hierarchy Process is the most accurate and extensively used requirement prioritization method in industry. However, scalability is still its major limitation when requirements are large in number. We have found that machine learning has shown potential to deal with this limitation. Last, we found that experiments were the most used research method to evaluate the various aspects of the proposed prioritization approaches. [Contribution] This paper identified and evaluated requirements prioritization techniques proposed between 2007 and 2019, and derived some trends. Limitations of the proposals and implications for research and practice are identified as well.
机译:[背景和动机]已经提出了许多需求优先级排序方法,但是在现实生活中并未对所有需求优先级方法进行实证研究。结果,我们对它们的适用性和实际使用的了解还不完善。 [问题/问题] 2007年对需求优先级的系统审查列出了提议的优先级方法及其优先级标准的概况。为了了解需求工程这一子领域自2007年以来如何发展以及通过经验评估积累了哪些证据,我们进行了文献综述,将其作为2007年至2019年之间发表的输入出版物。[原理/结果]我们评估了102提出和/或评估需求优先排序方法的论文。我们的结果表明,新提出的需求优先级排序方法倾向于用作基础模糊逻辑和机器学习算法。我们还得出结论,层次分析法是行业中最准确,使用最广泛的需求优先级排序方法。但是,当需求量很大时,可伸缩性仍然是其主要限制。我们发现机器学习已显示出解决这一局限性的潜力。最后,我们发现实验是评估提议的优先级排序方法各个方面的最常用的研究方法。 [贡献]本文确定并评估了2007年至2019年之间提出的需求优先级排序技术,并得出了一些趋势。还确定了建议的局限性以及对研究和实践的意义。

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