Record-level matching rules are chains of similarity join pred-icates on multiple attributes employed to join records that refer to the same real-world object when an explicit foreign key is not available on the data sets at hand. They are widely employed by data scientists and practitioners that work with data lakes, open data, and data in the wild. In this work we present a novel technique that allows to efficiently exe-cute record-level matching rules on parallel and distributed systems and demonstrate its efficiency on a real-wold data set.

Scaling up Record-level Matching Rules

Gagliardelli L.
;
2020-01-01

Abstract

Record-level matching rules are chains of similarity join pred-icates on multiple attributes employed to join records that refer to the same real-world object when an explicit foreign key is not available on the data sets at hand. They are widely employed by data scientists and practitioners that work with data lakes, open data, and data in the wild. In this work we present a novel technique that allows to efficiently exe-cute record-level matching rules on parallel and distributed systems and demonstrate its efficiency on a real-wold data set.
2020
Inglese
Maristella Agosti; Maurizio Atzori; Paolo Ciaccia; Letizia Tanca
CEUR Workshop Proceedings
2646
28th Italian Symposium on Advanced Database Systems, SEBD 2020
12
23
12
CEUR-WS
2020
ita
Data integration; Entity resolution; Parallel similarity join
none
Gagliardelli, L.; Simonini, G.; Bergamaschi, S.
273
info:eu-repo/semantics/conferenceObject
3
4 Contributo in Atti di Convegno (Proceeding)::4.1 Contributo in Atti di convegno
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11389/69799
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