Software Cost Estimation using Fuzzy Decision Trees

A. Andreou, Efi Papatheocharous
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引用次数: 50

Abstract

This paper addresses the issue of software cost estimation through fuzzy decision trees, aiming at acquiring accurate and reliable effort estimates for project resource allocation and control. Two algorithms, namely CHAID and CART, are applied on empirical software cost data recorded in the ISBSG repository. Approximately 1000 project data records are selected for analysis and experimentation, with fuzzy decision trees instances being generated and evaluated based on prediction accuracy. The set of association rules extracted is used for providing mean effort value ranges. The experimental results suggest that the proposed approach may provide accurate cost predictions in terms of effort. In addition, there is strong evidence that the fuzzy transformation of cost drivers contribute to enhancing the estimation process.
基于模糊决策树的软件成本估算
本文通过模糊决策树的方法研究软件成本估算问题,旨在获得准确可靠的项目资源分配和控制的工作量估算。将CHAID和CART两种算法应用于ISBSG库中记录的经验软件成本数据。选择大约1000个项目数据记录进行分析和实验,生成模糊决策树实例并根据预测精度进行评估。提取的关联规则集用于提供平均努力值范围。实验结果表明,所提出的方法可以提供准确的工作量成本预测。此外,有强有力的证据表明,成本驱动因素的模糊转换有助于提高估计过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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