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Search-Based Predictive Modelling for Software Engineering: How Far Have We Gone?

机译:基于搜索的软件工程预测建模:我们走了多远?

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In this keynote I introduce the use of Predictive Analytics for Software Engineering (SE) and then focus on the use of search-based heuristics to tackle long-standing SE prediction problems including (but not limited to) software development effort estimation and software defect prediction. I review recent research in Search-Based Predictive Modelling for SE in order to assess the maturity of the field and point out promising research directions. I conclude my keynote by discussing best practices for a rigorous and realistic empirical evaluation of search-based predictive models, a condicio sine qua non to facilitate the adoption of prediction models in software industry practices.
机译:在本主题演讲中,我介绍了软件工程预测分析(SE)的使用,然后重点介绍了基于搜索的启发式方法来解决长期存在的SE预测问题,包括(但不限于)软件开发工作量估计和软件缺陷预测。我回顾了SE的基于搜索的预测模型中的最新研究,以评估该领域的成熟度并指出有希望的研究方向。在结束主题演讲时,我将讨论对基于搜索的预测模型进行严格而现实的经验评估的最佳实践,这是一个有条件的条件,可促进在软件行业实践中采用预测模型。

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