EmbedJoin: Efficient Edit Similarity Joins via Embeddings
February 01, 2017 Β· Declared Dead Β· π Knowledge Discovery and Data Mining
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Authors
Haoyu Zhang, Qin Zhang
arXiv ID
1702.00093
Category
cs.DB: Databases
Citations
50
Venue
Knowledge Discovery and Data Mining
Last Checked
4 months ago
Abstract
We study the problem of edit similarity joins, where given a set of strings and a threshold value $K$, we want to output all pairs of strings whose edit distances are at most $K$. Edit similarity join is a fundamental problem in data cleaning/integration, bioinformatics, collaborative filtering and natural language processing, and has been identified as a primitive operator for database systems. This problem has been studied extensively in the literature. However, we have observed that all the existing algorithms fall short on long strings and large distance thresholds. In this paper we propose an algorithm named EmbedJoin which scales very well with string length and distance threshold. Our algorithm is built on the recent advance of metric embeddings for edit distance, and is very different from all of the previous approaches. We demonstrate via an extensive set of experiments that EmbedJoin significantly outperforms the previous best algorithms on long strings and large distance thresholds.
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