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A learning adaptation cases technique for Fuzzy Analogy-based software development effort estimation

机译:基于模糊类比的软件开发工作量估计的学习适应案例技术

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The aim of this paper is to enhance the Fuzzy Analogy technique for software effort development estimation. Fuzzy Analogy selects the similar projects that will be used in the adaptation step according to the definition of the qualification `closely similar'. The adopted definition consider two projects as closely similar if their similarity is in the vicinity of 1. The qualification `closely similar' is represented by a fuzzy set defined by a fixed threshold which is obtained experimentally from the environment. However, in many cases the available empirical knowledge may not allow estimators to fit the adequate fuzzy representation of the qualification `closely similar'. In this study, we propose an approach to learn this fuzzy representation from the similarities obtained in the retrieval step of the Fuzzy Analogy technique. The proposed method provides for each new project, an adequate threshold by using the quasi-arithmetic mean operators. Indeed, the quasi-arithmetic means operators use weighted similarities to calculate the threshold that often ensures the selection of the closest projects in the adaptation step. This paper also presents an empirical validation of the proposed approach based on the COCOMO'81 dataset.
机译:本文的目的是增强用于软件工作量开发估计的模糊类比技术。模糊类比根据“近似相似”的限定条件选择将在适应步骤中使用的相似项目。如果两个项目的相似度在1附近,则采用的定义将它们视为非常相似。“接近相似”的资格由模糊集表示,该模糊集由固定阈值定义,该阈值是通过实验从环境中获得的。但是,在许多情况下,可用的经验知识可能无法使估计量适合“近似相似”资格的充分模糊表示。在这项研究中,我们提出了一种从模糊类比技术的检索步骤中获得的相似性中学习这种模糊表示的方法。所提出的方法通过使用准算术平均算子为每个新项目提供了足够的阈值。的确,准算术运算符使用加权相似度来计算阈值,该阈值通常可确保在适应步骤中选择最接近的项目。本文还提出了基于COCOMO'81数据集的拟议方法的经验验证。

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