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首页> 外文期刊>International Journal of Software Engineering & Applications (IJSEA) >Ensemble Regression Models for Software Development Effort Estimation: A Comparative Study
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Ensemble Regression Models for Software Development Effort Estimation: A Comparative Study

机译:软件开发工作估算的集合回归模型:比较研究

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摘要

As demand for computer software continually increases, software scope and complexity become higher than ever. The software industry is in real need of accurate estimates of the project under development. Software development effort estimation is one of the main processes in software project management. However, overestimation and underestimation may cause the software industry loses. This study determines which technique has better effort prediction accuracy and propose combined techniques that could provide better estimates. Eight different ensemble models to estimate effort with Ensemble Models were compared with each other base on the predictive accuracy on the Mean Absolute Residual (MAR) criterion and statistical tests. The results have indicated that the proposed ensemble models, besides delivering high efficiency in contrast to its counterparts, and produces the best responses for software project effort estimation. Therefore, the proposed ensemble models in this study will help the project managers working with development quality software.
机译:随着对计算机软件的需求不断增加,软件范围和复杂性会高于以往任何时候都会高。软件行业实际上需要准确估算项目下的开发项目。软件开发工作估算是软件项目管理中的主要流程之一。然而,高估和低估可能导致软件行业失败。本研究确定哪种技术具有更好的努力预测准确性,并提出了可以提供更好估计的组合技术。将八种不同的集合模型与集合模型进行估算努力,相互比较了平均绝对残差(MAR)标准和统计测试的预测精度。结果表明,除了与对应力相比,该拟议的集合模型之外还具有对对应的高效率,并为软件项目努力估算产生最佳响应。因此,本研究中所提出的集合模型将有助于项目经理与发展质量软件合作。

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