化解:用于软件缺陷预测的数据注释器和模型构建器

Stefano Dalla Palma, D. D. Nucci, D. Tamburri
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引用次数: 1

摘要

我们提出了一种与语言无关的软件缺陷预测工具,称为“消融器”。该工具自动收集和分类故障数据,允许对这些分类进行纠正,并构建机器学习模型以基于这些数据检测缺陷。我们在基础设施即代码的范围内实例化了该工具,DevOps实践通过定义机器可读文件来实现基础设施的管理和供应。我们介绍了它的体系结构并提供了它的应用示例。演示视频:https://youtu.be/37mmLdCX3jU。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Defuse: A Data Annotator and Model Builder for Software Defect Prediction
We propose a language-agnostic tool for software defect prediction, called DEFUSE. The tool automatically collects and classifies failure data, enables the correction of those classifications, and builds machine learning models to detect defects based on those data. We instantiated the tool in the scope of Infrastructure-as-Code, the DevOps practice enabling management and provisioning of infrastructure through the definition of machine-readable files. We present its architecture and provide examples of its application.Demo video: https://youtu.be/37mmLdCX3jU.
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