Modeling and querying possible repairs in duplicate detection

dc.contributor.authorBeskales, George
dc.contributor.authorSoliman, Mohamed A.
dc.contributor.authorIlyas, Ihab F.
dc.contributor.authorBen-David, Shai
dc.date.accessioned2026-09-24T20:45:03Z
dc.date.issued2009-06-29
dc.description.abstractOne of the most prominent data quality problems is the existence of duplicate records. Current duplicate elimination procedures usually produce one clean instance (repair) of the input data, by carefully choosing the parameters of the duplicate detection algorithms. Finding the right parameter settings can be hard, and in many cases, perfect settings do not exist. Furthermore, replacing the input dirty data with one possible clean instance may result in unrecoverable errors, for example, identification and merging of possible duplicate records in health care systems. In this paper, we treat duplicate detection procedures as data processing tasks with uncertain outcomes. We concentrate on a family of duplicate detection algorithms that are based on parameterized clustering. We propose a novel uncertainty model that compactly encodes the space of possible repairs. We show how to efficiently support relational queries under our model, and allowing new types of queries on the set of possible repairs. We give an experimental study illustrating the scalability and the efficiency of our techniques in different configurations.
dc.identifier.urihttps://hdl.handle.net/10012/24420
dc.language.isoen
dc.publisherUniversity of Waterloo
dc.relation.ispartofseriesComputer Science Technical Reports; CS-2009-15
dc.titleModeling and querying possible repairs in duplicate detection
dc.typeTechnical Report
uws.contributor.affiliation1Faculty of Mathematics
uws.contributor.affiliation2David R. Cheriton School of Computer Science
uws.peerReviewStatusUnreviewed
uws.scholarLevelFaculty
uws.typeOfResourceTexten

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