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Genetic Programming as Alternative for Predicting Development Effort of Individual Software Projects

机译:遗传规划作为替代预测个人软件项目的开发工作

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摘要

Statistical and genetic programming techniques have been used to predict the software development effort of large software projects. In this paper, a genetic programming model was used for predicting the effort required in individually developed projects. Accuracy obtained from a genetic programming model was compared against one generated from the application of a statistical regression model. A sample of 219 projects developed by 71 practitioners was used for generating the two models, whereas another sample of 130 projects developed by 38 practitioners was used for validating them. The models used two kinds of lines of code as well as programming language experience as independent variables. Accuracy results from the model obtained with genetic programming suggest that it could be used to predict the software development effort of individual projects when these projects have been developed in a disciplined manner within a development-controlled environment.
机译:统计和遗传编程技术已用于预测大型软件项目的软件开发工作。在本文中,遗传规划模型用于预测单独开发的项目所需的工作量。将遗传规划模型获得的准确性与统计回归模型的应用产生的准确性进行比较。由71位从业者开发的219个项目的样本用于生成两个模型,而由38位从业者开发的130个项目的另一个样本用于验证它们。该模型使用两种代码行以及编程语言经验作为自变量。通过遗传编程获得的模型的准确性结果表明,当在开发控制的环境中以纪律方式开发这些项目时,可以将其用于预测单个项目的软件开发工作。

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