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A Novel Developer Portrait Model based on Bert-Capsule Network

机译:基于BERT-CAPSULE网络的新型开发人员纵向模型

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摘要

In order to ensure code quality, it's necessary to construct portraits for developers, which could analyze their behavior to provide personalized programming suggestions. However, most of the existing developer portrait algorithms only use global features and ignore local features extracted from log texts, which leads to the lack of comprehensive personality analysis. To solve this problem, the proposed method proposes a novel developer portrait model, which could describe developers' programming styles more accurately with both global and local information extracted from texts. The proposed model firstly collects the log data produced in the process of continuous integration development. Afterwards, the proposed method proposes the personality portrait model based on BERT-Capsule network, which successfully combines global semantic features and local emotional features. The experimental results show that the proposed BERT-Capsule model can effectively extract the contextual information and the local emotional information of the text, thus improving classification performance of the developer portrait model.
机译:为了确保代码质量,有必要构建开发人员的肖像,这可以分析其行为来提供个性化编程建议。但是,大多数现有的开发人员纵向算法仅使用全局功能,并忽略从日志文本中提取的本地功能,从而导致缺乏全面的人格分析。为了解决这个问题,所提出的方法提出了一种新颖的开发人员纵向模型,它可以更准确地描述从文本中提取的全局和本地信息更准确地描述开发人员编程样式。所提出的模型首先收集在连续集成开发过程中产生的日志数据。之后,该方法提出了基于BERT-CAPSULE网络的人格肖像模型,该网络成功结合了全局语义特征和本地情绪特征。实验结果表明,所提出的BERT-CAPSULE模型可以有效提取文本的语境信息和本地情感信息,从而提高开发人员肖像模型的分类性能。

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