Loghub: A Large Collection of System Log Datasets for AI-driven Log Analytics
Loghub: большая коллекция наборов данных системных журналов для аналитики журналов на основе искусственного интеллекта
2020-08-14
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AI-driven log analyticsLoghublog analysis benchmarkingreal-world datasetssystem log datasets
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Abstract (AI)
Logs have been widely adopted in software system development and maintenance because of the rich runtime information they record. In recent years, the increase of software size and complexity leads to the rapid growth of the volume of logs. To handle these large volumes of logs efficiently and effectively, a line of research focuses on developing intelligent and automated log analysis techniques. However, only a few of these techniques have reached successful deployments in industry due to the lack of public log datasets and open benchmarking upon them. To fill this significant gap and facilitate more research on AI-driven log analytics, we have collected and released loghub, a large collection of system log datasets. In particular, loghub provides 19 real-world log datasets collected from a wide range of software systems, including distributed systems, supercomputers, operating systems, mobile systems, server applications, and standalone software. In this paper, we summarize the statistics of these datasets, introduce some practical usage scenarios of the loghub datasets, and present our benchmarking results on loghub to benefit the researchers and practitioners in this field. Up to the time of this paper writing, the loghub datasets have been downloaded for roughly 90,000 times in total by hundreds of organizations from both industry and academia. The loghub datasets are available at https://github.com/logpai/loghub.
Key Findings
1
By the time of publication, LogHub datasets had been downloaded approximately 90,000 times by hundreds of industry and academic organizations.
2
LogHub addresses the shortage of public datasets and open benchmarks that has limited industrial deployment of automated log-analysis techniques.
3
LogHub releases 19 real-world system-log datasets spanning distributed systems, supercomputers, operating systems, mobile systems, server applications, and standalone software.
4
The collection is publicly available through the LogPai GitHub repository, enabling reproducible research and benchmarking.
5
The paper summarizes dataset statistics, describes practical usage scenarios, and reports benchmarking results to support AI-driven log-analytics research and practice.
Research Object
Loghub, a collection of 19 real-world system log datasets from diverse software systems
Research Subject
The datasets’ coverage, usage scenarios, and benchmarking for AI-driven log analytics
Publication Details
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2020-08-14
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