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Software Defect Prediction Using Bayesian Networks and Kernel Methods: Late Modernity in Language Classrooms

Autor Ahmet Okutan
en Limba Engleză Paperback – 10 apr 2015
There are lots of different software metrics discovered and used for defect prediction in the literature. Instead of dealing with so many metrics, it would be practical and easy if we could determine the set of metrics that are most important and focus on them more to predict defectiveness. In this book, we use Bayesian modeling to determine the influential relationships among software metrics and defect proneness. Furthermore, we propose a novel technique for defect prediction that uses plagiarism detection tools. We use kernel programming to model the relationship between source code similarity and defectiveness and suggest that source code similarity is a good means of predicting both defectiveness and the number of defects in software systems.
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Specificații

ISBN-13: 9783639703467
ISBN-10: 3639703464
Pagini: 168
Dimensiuni: 152 x 229 x 10 mm
Greutate: 0.25 kg
Editura: Scholars' Press

Notă biografică

Ahmet Okutan was born on 20 June 1976, in Çaykara, Trabzon. He received his BS degree from BOGAZICI University Computer Engineering in 1998.He is an entrepreneur and has professional experience regarding software project management, system analysis and design in more than 50 software projects.