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Mining bridging rules between conceptual clusters

delete2010-08-04
delete4
PRE
AI
S
Shichao Zhang *
F
Feng Chen
X
Xindong Wu
张
张承启 (Chengqi Zhang)
R
Ruili Wang
DOI:10.1007/s10489-010-0247-ydelete
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Abstract

Abstract

En 中文
Bridging rules take the antecedent and action from different conceptual clusters. They are distinguished from association rules (frequent itemsets) because (1) they can be generated by the infrequent itemsets that are pruned in association rule mining, and (2) they are measured by their importance including the distance between two conceptual clusters, whereas frequent itemsets are measured only by their support. In this paper, we first design two algorithms for mining bridging rules between clusters, and then propose two non-linear metrics to measure their interestingness. We evaluate these algorithms experimentally and demonstrate that our approach is promising.
Keywords:
Bridging rule
Clustering
Weighting
Association rule
Entropy

Journal

Applied Intelligence cover
Applied Intelligence
IF:
3.5
Papers:
7.6K
Citations:
1.7W

Organization

H
hefei university of technology
Scholars:
2.5W
Papers: 1.7W
Citations: 35
Z
Zhejiang Normal University
Scholars:
1.3W
Papers: 8.4K
Citations: 1.2W
U
university of technology sydney
Scholars:
1.6W
Papers: 2.0W
Citations: 25
L
La Trobe University
Scholars:
1.1W
Papers: 1.1W
Citations: 1.5W
M
Massey University
Scholars:
7.7K
Papers: 7.9K
Citations: 9.6K
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