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DOI

Previous studies introduced various techniques for detecting Move Method refactoring opportunities. However, different authors have different evaluations, which leads to the fact that results reported by different papers do not correlate with each other and it is almost impossible to understand which algorithm works better in practice. In this paper, we provide an overview of existing evaluation approaches for Move Method refactoring recommendation algorithms, as well as discuss their advantages and disadvantages. We propose a tool that can be used for generating large synthetic datasets suitable for both algorithms evaluation and building complex machine learning models for Move Method refactoring recommendation
Язык оригиналаанглийский
Название основной публикацииIWOR '19: Proceedings of the 3rd International Workshop on Refactoring
Страницы23-26
ISBN (электронное издание)9781728122700
DOI
СостояниеОпубликовано - мая 2019
Событие3rd International Workshop on Refactoring - Montreal, Quebec, Канада
Продолжительность: 28 мая 201928 мая 2019

конференция

конференция3rd International Workshop on Refactoring
Сокращенное названиеIWOR '19
Страна/TерриторияКанада
ГородMontreal, Quebec
Период28/05/1928/05/19

    Предметные области Scopus

  • Программный продукт
  • Безопасность, риски, качество и надежность

ID: 43773876