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Selecting the Right Correlation Measure for Binary Data

delete2014-09-23
delete9
PRE
AI
L
Lian Duan *
W
W. Nick Street
刘砚池 cover
刘砚池 (Yanchi Liu)
S
Songhua Xu
B
Brook Wu
DOI:10.1145/2637484delete
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Abstract

Abstract

En 中文
Finding the most interesting correlations among items is essential for problems in many commercial, medical, and scientific domains. Although there are numerous measures available for evaluating correlations, different correlation measures provide drastically different results. Piatetsky-Shapiro provided three mandatory properties for any reasonable correlation measure, and Tan et al. proposed several properties to categorize correlation measures; however, it is still hard for users to choose the desirable correlation measures according to their needs. In order to solve this problem, we explore the effectiveness problem in three ways. First, we propose two desirable properties and two optional properties for correlation measure selection and study the property satisfaction for different correlation measures. Second, we study different techniques to adjust correlation measures and propose two new correlation measures: the Simplified chi(2) with Continuity Correction and the Simplified chi(2) with Support. Third, we analyze the upper and lower bounds of different measures and categorize them by the bound differences. Combining these three directions, we provide guidelines for users to choose the proper measure according to their needs.
Keywords:
Knowledge discovery
correlation
association rules
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

ACM Transactions on Knowledge Discovery from Data cover
ACM Transactions on Knowledge Discovery from Data
IF:
4.8
Papers:
1.3K
Citations:
4.4K

Organization

U
University of Iowa
Scholars:
2.8W
Papers: 2.3W
Citations: 600
N
New Jersey Institute of Technology
Scholars:
4.2K
Papers: 4.5K
Citations: 4.6K
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