An Algebraic Approach for High-level Text Analytics
May 03, 2020 Β· Declared Dead Β· π International Conference on Statistical and Scientific Database Management
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Authors
Xiuwen Zheng, Amarnath Gupta
arXiv ID
2005.00993
Category
cs.DB: Databases
Citations
0
Venue
International Conference on Statistical and Scientific Database Management
Last Checked
4 months ago
Abstract
Text analytical tasks like word embedding, phrase mining, and topic modeling, are placing increasing demands as well as challenges to existing database management systems. In this paper, we provide a novel algebraic approach based on associative arrays. Our data model and algebra can bring together relational operators and text operators, which enables interesting optimization opportunities for hybrid data sources that have both relational and textual data. We demonstrate its expressive power in text analytics using several real-world tasks.
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