基于贝叶斯信念网络的软件项目水平估计模型框架

Hao Wang, Fei Peng, Chao Zhang, Andrej Pietschker
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引用次数: 23

摘要

软件评估模型应该支持软件项目中的管理决策。我们的经验是,当前的大多数模型都没有达到管理者所期望的扩展目标。提出了一种基于贝叶斯信念网络的软件项目水平估计模型框架。该框架由四个基本的BBN子模型组成,即组件估计子模型、测试有效性估计子模型、剩余缺陷估计子模型和测试估计子模型。这些子模型的集成实现了一个适合于项目级别的评估模型。使用该项目级别估计模型,可以在项目级别和特定项目阶段级别进行质量、工作量、进度和范围的估计和分析。我们展示了如何在一个示例项目中使用这种方法,允许项目经理实现一个初始的评估,权衡质量、工作量、进度和范围,并在项目的后期阶段改进评估
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Software Project Level Estimation Model Framework based on Bayesian Belief Networks
Software estimation models should support managerial decision making in software projects. We experience that most of current models do not achieve this goal to the extend managers are looking for. This paper presents a software project level estimation model framework based on Bayesian belief networks. The framework is constructed by using four basic BBN sub-models, component estimation, test effectiveness estimation, residual defect estimation and test estimation sub-models. The integration of these submodels achieves an estimation model suitable for project levels. With this project level estimation model, the estimation and analysis of quality, effort, schedule and scope can be carried out at both project level and specific project phase level. We show how this approach is used in a sample project, allowing project manager to implement an initial estimation, trade-off quality, effort, schedule and scope, and refine the estimation in the later phase of the project
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