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Decision Trees Based Software Development Effort Estimation: A Systematic Mapping Study

机译:基于决策树的软件开发工作估算:系统映射研究

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The decision tree (DT) represents a nonparametric estimation method that has been mostly used for both classification and regression problems. DTs were adopted for software development effort estimation (SDEE) generally for their simplicity of use and interpretation contrary to other learning methods. Nevertheless, to our self-knowledge, no systematic mapping has been devoted especially to decision trees. The aim of this study is to elaborate a systematic mapping study that classifies DTs papers in conformity with the succeeding criteria: research approach, contribution type, techniques employed in combination with DT methods besides identifying publication channels and trends. An automated search of five digital libraries was made to carry out a systematic mapping of DT studies mainly devoted to SDEE that were published in the period 1985–2017. We identify 46 relevant studies. Basically, the results revealed that most researchers focus on technique contribution type. In addition, the majority of papers deal with improving the existing DT models while few studies have proposed novel models to improve the reliability of SDEE. Furthermore, solution proposal and case study are the most frequently used approaches.
机译:决策树(DT)表示非参数估计方法,其主要用于分类和回归问题。 DTS被用于软件开发工作估算(SDEE),通常用于他们的使用和违反其他学习方法的解释。尽管如此,对于我们的自我知识,没有专门致力于决策树的系统映射。本研究的目的是详细阐述系统的映射研究,该研究将DTS论文分类,符合成功标准:研究方法,贡献类型,与DT方法相结合的技术,除了识别出版信道和趋势。对五个数字图书馆进行了自动搜索,进行了一个系统的系统映射,主要致力于1985 - 2017年期间发表的SDEE。我们确定了46项相关研究。基本上,结果表明,大多数研究人员专注于技术贡献类型。此外,大多数论文处理了改善现有的DT模型,而少数研究则提出了提高SDEE的可靠性的新型模型。此外,解决方案提案和案例研究是最常用的方法。

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