BOOK-CHAPTER

Semantics-Based Classification of Rule Interestingness Measures

Abstract

Assessing rules with interestingness measures is the cornerstone of successful applications of association rule discovery. However, as numerous measures may be found in the literature, choosing the measures to be applied for a given application is a difficult task. In this chapter, the authors present a novel and useful classification of interestingness measures according to three criteria: the subject, the scope, and the nature of the measure. These criteria seem essential to grasp the meaning of the measures, and therefore to help the user to choose the ones (s)he wants to apply. Moreover, the classification allows one to compare the rules to closely related concepts such as similarities, implications, and equivalences. Finally, the classification shows that some interesting combinations of the criteria are not satisfied by any index.

Keywords:
GRASP Scope (computer science) Computer science Meaning (existential) Task (project management) Semantics (computer science) Cornerstone Measure (data warehouse) Information retrieval Association rule learning Data mining Artificial intelligence Natural language processing Psychology Engineering

Metrics

6
Cited By
1.49
FWCI (Field Weighted Citation Impact)
44
Refs
0.85
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Data Mining Algorithms and Applications
Physical Sciences →  Computer Science →  Information Systems
Rough Sets and Fuzzy Logic
Physical Sciences →  Computer Science →  Computational Theory and Mathematics
Data Management and Algorithms
Physical Sciences →  Computer Science →  Signal Processing

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