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A replicated assessment and comparison of common software cost modeling techniques

机译:通用软件成本建模技术的重复评估和比较

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摘要

Delivering a software product on time, within budget, and to an agreed level of quality is a critical concern for many software organizations. Underestimating software costs can have detrimental effects on the quality of the delivered software and thus on a company's business reputation and competitiveness. On the other hand, overestimation of software cost can result in missed opportunities to funds in other projects. In response to industry demand, a myriad of estimation techniques has been proposed during the last three decades. In order to assess the suitability of a technique from a diverse selection, its performance and relative merits must be compared.

The current study replicates a comprehensive comparison of common estimation techniques within different organizational contexts, using data from the European Space Agency. Our study is motivated by the challenge to assess the feasibility of using multi-organization data to build cost models and the benefits gained from company-specific data collection. Using the European Space Agency data set, we investigated a yet unexplored application domain, including military and space projects. The results showed that traditional techniques, namely, ordinary least-squares regression and analysis of variance outperformed Analogy-based estimation and regression trees. Consistent with the results of the replicated study no significant difference was found in accuracy between estimates derived from company-specific data and estimates derived from multi-organizational data.

机译:

对于许多软件组织来说,在预算范围内按时交付高质量的软件产品并达到商定的质量水平是至关重要的。低估软件成本可能会对所交付软件的质量产生不利影响,从而对公司的商业声誉和竞争力产生不利影响。另一方面,对软件成本的高估可能会导致其他项目的资金筹集机会错失。为了响应行业需求,在过去的三十年中已经提出了无数的估算技术。为了从多种选择中评估一种技术的适用性,必须比较其性能和相对优点。

当前的研究使用欧洲航天局的数据,对不同组织环境下常用估算技术进行了全面比较。我们的研究受到挑战的挑战,该挑战是评估使用多组织数据构建成本模型的可行性以及从公司特定数据收集中获得的收益。使用欧洲航天局的数据集,我们调查了一个尚未探索的应用领域,包括军事和太空项目。结果表明,传统技术,即普通最小二乘回归和方差分析优于基于类推的估计和回归树。与重复研究的结果一致,从公司特定数据得出的估计值与从多组织数据得出的估计值之间在准确性上没有发现显着差异。

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