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Assisted requirements selection by clustering

机译:通过聚类辅助要求选择

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Requirements selection is a decision-making process that enables project managers to focus on the deliverables that add most value to the project outcome. This task is performed to define which features or requirements will be developed in the next release. It is a complex multi-criteria decision process that has been focused by many research works, because a balance between business profits and investment is needed. The spectrum of prioritization techniques spans from simple and qualitative to elaborated analytic prioritization approaches that fall into the category of optimization algorithms. This work studies the combination of the qualitative MoSCoW method and cluster analysis for requirements selection. The feasibility of our methodology has been tested on three case studies (with 20, 50 and 100 requirements). In each of them, the requirements have been clustered, and then the clustering configurations found have been evaluated using internal validation measures for the compactness, connectivity and separability of the clusters. The experimental results show the validity of clustering strategies for the identification of the core set of requirements for the software product, being the number of categories proposed by MoSCoW a good starting point in requirements prioritization and negotiation.
机译:要求选择是一个决策过程,使项目经理能够专注于为项目结果添加大多数值的可交付成果。执行此任务以定义将在下一个版本中开发的功能或要求。这是一个复杂的多标准决策过程,已被许多研究作品重点,因为需要业务利润和投资之间的平衡。优先级化技术的频谱从简单和定性的跨越分析优先级方法跨越落入优化算法类别。这项工作研究了定性莫斯科方法和群集分析的组合选择。我们的方法论的可行性已经在三种案例研究中进行了测试(具有20,50和100个要求)。在它们中的每一个中,要求已群集,然后使用内部验证度量进行评估,用于对集群的紧凑,连接和可分离性进行评估。实验结果表明,识别软件产品要求核心核心要求的群集策略的有效性,是莫斯科提出的类别的数量是要求优先顺序和谈判的良好起点。

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