Software Effort Estimation using Machine Learning Technique

dc.contributor.authorRahman, Mizanur
dc.contributor.authorRoy, Partha Protim
dc.contributor.authorAli, Mohammad
dc.contributor.authorGonçalves, Teresa
dc.contributor.authorSarwar, Hasan
dc.date.accessioned2026-02-16T11:48:41Z
dc.date.available2026-02-16T11:48:41Z
dc.date.issued2023
dc.description.abstractSoftware engineering effort estimation plays a significant role in managing project cost, quality, and time and creating software. Researchers have been paying close attention to software estimation during the past few decades, and a great amount of work has been done utilizing a variety of machine-learning techniques and algorithms. In order to better effectively evaluate predictions, this study recommends various machine learning algorithms for estimating, including k-nearest neighbor regression, support vector regression, and decision trees. These methods are now used by the software development industry for software estimating with the goal of overcoming the limitations of parametric and conventional estimation techniques and advancing projects. Our dataset, which was created by a software company called Edusoft Consulted LTD, was used to assess the effectiveness of the established method. The three commonly used performance evaluation measures, mean absolute error (MAE), mean squared error (MSE), and R square error, represent the base for these. Comparative experimental results demonstrate that decision trees perform better at predicting effort than other techniques.por
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dc.identifier.authoremailnd
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dc.identifier.authoremailtcg@uevora.pt
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dc.identifier.citationMizanur Rahman, Partha Protim Roy, Mohammad Ali, Teresa Gonc¸alves and Hasan Sarwar. “Software Effort Estimation using Machine Learning Technique”. International Journal of Advanced Computer Science and Applications (IJACSA) 14.4 (2023). http://dx.doi.org/10.14569/IJACSA.2023.0140491por
dc.identifier.doihttp://dx.doi.org/10.14569/IJACSA.2023.0140491por
dc.identifier.scientificarea498por
dc.identifier.urihttp://hdl.handle.net/10174/41184
dc.language.isoengpor
dc.peerreviewedyespor
dc.publisherSAIpor
dc.rightsopenAccesspor
dc.titleSoftware Effort Estimation using Machine Learning Techniquepor
dc.typearticlepor

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