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Automatically recommending components for issue reports using deep learning

delete2021-02-02
delete14
PRE
AI
M
Morakot Choetkiertikul *
H
Hoa Khanh Dam
T
Truyen Tran
T
Trang Pham
C
Chaiyong Ragkhitwetsagul
A
Aditya Ghose
DOI:10.1007/s10664-020-09898-5delete
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摘要

摘要

En 中文
Today's software development is typically driven by incremental changes made to software to implement a new functionality, fix a bug, or improve its performance and security. Each change request is often described as an issue. Recent studies suggest that a set of components (e.g., software modules) relevant to the resolution of an issue is one of the most important information provided with the issue that software engineers often rely on. However, assigning an issue to the correct component(s) is challenging, especially for large-scale projects which have up to hundreds of components. In this paper, we propose a predictive model which learns from historical issue reports and recommends the most relevant components for new issues. Our model uses Long Short-Term Memory, a deep learning technique, to automatically learn semantic features representing an issue report, and combines them with the traditional textual similarity features. An extensive evaluation on 142,025 issues from 11 large projects shows that our approach outperforms one common baseline, two state-of-the-art techniques, and six alternative techniques with an improvement of 16.70%-66.31% on average across all projects in predictive performance.
Keyword:
Software engineering analytics
Component recommendation
Recommendation systems for software engineering
Mining software repositories
Deep learning
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期刊

Empirical Software Engineering 封面图
Empirical Software Engineering
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3.6
论文数:
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被引数:
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University of Wollongong
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1.3W
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被引数: 2.8W
M
mahidol university
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2.4W
论文数: 1.5W
被引数: 19
D
Deakin University
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被引数: 2.8W
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