Finding Related Tables in Data Lakes for Interactive Data Science
Yi Zhang, Zachary G. Ives
摘要
Many modern data science applications build on data lakes, schema-agnostic repositories of data files and data products that offer limited organization and management capabilities. There is a need to build data lake search capabilities into data science environments, so scientists and analysts can find tables, schemas, workflows, and datasets useful to their task at hand. We develop search and management solutions for the Jupyter Notebook data science platform, to enable scientists to augment training data, find potential features to extract, clean data, and find joinable or linkable tables. Our core methods also generalize to other settings where computational tasks involve execution of programs or scripts.
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- Semantics-aware Dataset Discovery from Data Lakes with Contextualized Column-based Representation LearningGrace Fan, Jin Wang, Yuliang Li, Dan Zhang 等VLDB 2023 · 被引用 139 次
- Valentine: Evaluating Matching Techniques for Dataset DiscoveryChristos Koutras, George Siachamis, Andra Ionescu, Kyriakos Psarakis 等ICDE 2021 · 被引用 87 次
- Efficient Joinable Table Discovery in Data Lakes: A High-Dimensional Similarity-Based ApproachYuyang Dong, Kunihiro Takeoka, Chuan Xiao, Masafumi OyamadaICDE 2021 · 被引用 78 次
- SANTOS: Relationship-based Semantic Table Union SearchAamod Khatiwada, Grace Fan, Roee Shraga, Zixuan Chen 等SIGMOD 2023 · 被引用 61 次
- Integrating Data Lake TablesAamod Khatiwada, Roee Shraga, Wolfgang Gatterbauer, Renée J. MillerVLDB 2023 · 被引用 59 次
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