DocumentCode :
3125275
Title :
Interesting Multi-relational Patterns
Author :
Spyropoulou, Eirini ; De Bie, Tijl
Author_Institution :
Intell. Syst. Lab., Univ. of Bristol, Bristol, UK
fYear :
2011
fDate :
11-14 Dec. 2011
Firstpage :
675
Lastpage :
684
Abstract :
Mining patterns from multi-relational data is a problem attracting increasing interest within the data mining community. Traditional data mining approaches are typically developed for highly simplified types of data, such as an attribute-value table or a binary database, such that those methods are not directly applicable to multi-relational data. Nevertheless, multi-relational data is a more truthful and therefore often also a more powerful representation of reality. Mining patterns of a suitably expressive syntax directly from this representation, is thus a research problem of great importance. In this paper we introduce a novel approach to mining patterns in multi-relational data. We propose a new syntax for multi-relational patterns as complete connected sub graphs in a representation of the database as a k-partite graph. We show how this pattern syntax is generally applicable to multirelational data, while it reduces to well-known tiles [7] when the data is a simple binary or attribute-value table. We propose RMiner, an efficient algorithm to mine such patterns, and we introduce a method for quantifying their interestingness when contrasted with prior information of the data miner. Finally, we illustrate the usefulness of our approach by discussing results on real-world and synthetic databases.
Keywords :
data mining; graph theory; pattern classification; K-partite graph; RMiner; attribute-value table; binary database; connected subgraphs; multirelational data mining patterns; Bipartite graph; Data mining; Entropy; Itemsets; Motion pictures; Syntactics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Data Mining (ICDM), 2011 IEEE 11th International Conference on
Conference_Location :
Vancouver,BC
ISSN :
1550-4786
Print_ISBN :
978-1-4577-2075-8
Type :
conf
DOI :
10.1109/ICDM.2011.82
Filename :
6137272
Link To Document :
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