2014
DOI: 10.15446/ing.investig.v34n3.41638
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Quality measures for fuzzy predicates in conjunctive and disjunctive normal forms

Abstract: Association rule mining is a very popular data mining technique. Rules in this technique are often used to identify and represent dependencies between attributes in databases. Specifically, fuzzy association rules are rules that use the concepts of fuzzy sets and can be considered as a special case of fuzzy predicates. Many quality measures have been defined for fuzzy association rules, but all consider a specific structure: antecedent and consequence. In the case of fuzzy predicates in the normal form (i.e., … Show more

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Cited by 4 publications
(1 citation statement)
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“…Probabilistic logic operators [16] are not idempotent; the conjunction of two variables with the same values does not result in the same number. Compensatory fuzzy logic (CFL) is sensitive and idempotent [17] because associativity is excluded; examples of this include the geometric mean based compensatory logic (GMBC) and their dual [18,19].…”
Section: Multi-descriptor Processing With Fuzzy Logical Predicatesmentioning
confidence: 99%
“…Probabilistic logic operators [16] are not idempotent; the conjunction of two variables with the same values does not result in the same number. Compensatory fuzzy logic (CFL) is sensitive and idempotent [17] because associativity is excluded; examples of this include the geometric mean based compensatory logic (GMBC) and their dual [18,19].…”
Section: Multi-descriptor Processing With Fuzzy Logical Predicatesmentioning
confidence: 99%