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Relevance Feedback for Association Rules using Fuzzy Score Aggregation
Type of publication: Inproceedings
Citation: russ2007nafips
Booktitle: Proc. Conf. North American Fuzzy Information Processing Society (NAFIPS 2007)
Year: 2007
Month: June
Pages: 54--59
URL: http://ieeexplore.ieee.org/xpl...
DOI: 10.1109/nafips.2007.383810
Abstract: We propose a novel and more flexible relevance feedback for association rules which is based on a fuzzy notion of relevance. Our approach transforms association rules into a vector-based representation using some inspiration from document vectors in information retrieval. These vectors are used as the basis for a relevance feedback approach which builds a knowledge base of rules previously rated as (un)interesting by a user. Given an association rule the vector representation is used to obtain a fuzzy score of how much this rule contradicts a rule in the knowledge base. This yields a set of relevance scores for each assessed rule which still need to be aggregated. Rather than relying on a certain aggregation measure we utilize OWA operators for score aggregation to gain a high degree of flexibility and understandability.
Keywords:
Authors Ruß, Georg
Böttcher, Mirko
Kruse, Rudolf
Added by: [ADM]
Total mark: 0
Attachments
  • russ2007nafips.pdf
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