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LogAssist: Assisting Log Analysis Through Log Summarization

delete2022-09-01
delete14
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OA
AI
S
Steven Locke *
H
Heng Li
T
Tse-Hsun Chen
W
Weiyi Shang
W
Wei Liu
DOI:10.1109/TSE.2021.3083715delete
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摘要

摘要

En 中文
Logs contain valuable information about the runtime behaviors of software systems. Thus, practitioners rely on logs for various tasks such as debugging, system comprehension, and anomaly detection. However, logs are difficult to analyze due to their unstructured nature and large size. In this paper, we propose a novel approach called LogAssist that assists practitioners with log analysis. LogAssist provides an organized and concise view of logs by first grouping logs into event sequences (i.e., workflows), which better illustrate the system runtime execution paths. Then, LogAssist compresses the log events in workflows by hiding consecutive events and applying n-gram modeling to identify common event sequences. We evaluated LogAssist on logs generated by one enterprise and two open source systems. We find that LogAssist can reduce the number of log events that practitioners need to investigate by up to 99 percent. Through a user study with 19 participants, we find that LogAssist can assist practitioners by reducing the time required for log analysis tasks by an average of 40 percent. The participants also rated LogAssist an average of 4.53 out of 5 for improving their experiences of performing log analysis. Finally, we document our experiences and lessons learned from developing and adopting LogAssist in practice. We believe that LogAssist and our reported experiences may lay the basis for future analysis and interactive exploration on logs.
Keyword:
Task analysis
Runtime
Tools
Testing
Faces
Anomaly detection
Software systems
Log analysis
log compression
n-gram modeling
log abstraction
workflow characterization
log reduction
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期刊

IEEE Transactions on Software Engineering 封面图
IEEE Transactions on Software Engineering
IF:
5.6
论文数:
2.9K
被引数:
1.1W

机构

U
universite de montreal
学者数:
4.6W
论文数: 3.8W
被引数: 46
C
concordia university - canada
学者数:
8.0K
论文数: 8.9K
被引数: 4
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引用论文

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