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Sort it Like You Mean It: Discovering Semantically Interesting Attribute Augmentations to Sort Tables

Summary: InsightSort automates semantically meaningful table sorting by discovering attribute augmentations through data-lake table linking. An LLM then synthesizes diverse top-k sorting attributes, enabling richer exploratory analysis than manual sort design. (summarized by gpt-5.6-luna on Jul 24 2026)

Paper ID
14361
Venue
VLDB
Year
2025
Pagerank
5.093636e-05
Overall Rank
11,055 | 24.16%
DOI
10.14778/3750601.3750688

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Authors

BibTeX Citation

@article{khatri_vldb25,
        title = {{Sort it Like You Mean It: Discovering Semantically Interesting Attribute Augmentations to Sort Tables}},
        author = {Khatri, Akash and Mohammad, Mir Mahathir and Rezig, El Kindi},
        journal = {PVLDB},
        series = {{VLDB} '25},
        volume = {18},
        number = {12},
        pages = {5427--5430},
        doi = {10.14778/3750601.3750688},
        url = {https://doi.org/10.14778/3750601.3750688},
        year = {2025}
}

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Citations counted here include only citations to other VLDB/SIGMOD/CIDR/PODS papers in this database.

Rank Cited Paper Year Venue Pagerank
749 Data Lake Management: Challenges and Opportunities 2019 VLDB 0.00014379989
3,073 DeepJoin: Joinable Table Discovery with Pre-trained Language Models 2023 VLDB 7.785842e-05
7,093 DICE: Data Discovery by Example 2021 VLDB 5.7056625e-05
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