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Fuzzy-class point approach for software effort estimation using various adaptive regression methods

机译:使用各种自适应回归方法进行软件工作量估计的模糊类点方法

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摘要

The effort involved in developing a software product plays an important role in determining the success or failure. In the context of developing software using object oriented methodologies, traditional methods and metrics were extended to help managers in effort estimation activity. Software project managers require a reliable approach for effort estimation. It is especially important during the early stage of the software development life cycle. In this paper, the main goal is to estimate the cost of various software projects using class point approach and optimize the parameters using six types of adaptive regression techniques such as multi-layer perceptron, multivariate adaptive regression splines, projection pursuit regression, constrained topological mapping, K nearest neighbor regression and radial basis function network to achieve better accuracy. Also a comparative analysis of software effort estimation using these various adaptive regression techniques has been provided. By estimating the effort required to develop software projects accurately, we can have softwares with acceptable quality within budget and on planned schedules.
机译:开发软件产品所涉及的工作在确定成功或失败中起着重要作用。在使用面向对象的方法开发软件的情况下,传统的方法和指标得到了扩展,以帮助管理人员进行工作量估算活动。软件项目经理需要可靠的方法来进行工作量估算。在软件开发生命周期的早期阶段,这一点尤其重要。本文的主要目标是使用类点方法估算各种软件项目的成本,并使用多层感知器,多元自适应回归样条,投影追踪回归,约束拓扑映射等六种类型的自适应回归技术来优化参数,K最近邻回归和径向基函数网络以实现更好的准确性。还提供了使用这些各种自适应回归技术的软件工作量估算的比较分析。通过估算准确开发软件项目所需的工作量,我们可以在预算内和计划的时间表内获得质量可接受的软件。

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