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Unsupervised KDD to creatively support managers' decision making with fuzzy association rules: A distribution channel application

  • Albert Orriols-Puig
  • , Francisco J. Martínez-López*
  • , Jorge Casillas
  • , Nick Lee
  • *Autor/a de correspondencia de este trabajo

    Producción científica: Artículo en revista indizadaArtículorevisión exhaustiva

    18 Citas (Scopus)

    Resumen

    To be competitive in contemporary turbulent environments, firms must be capable of processing huge amounts of information, and effectively convert it into actionable knowledge. This is particularly the case in the marketing context, where problems are also usually highly complex, unstructured and ill-defined. In recent years, the development of marketing management support systems has paralleled this evolution in informational problems faced by managers, leading to a growth in the study (and use) of artificial intelligence and soft computing methodologies. Here, we present and implement a novel intelligent system that incorporates fuzzy logic and genetic algorithms to operate in an unsupervised manner. This approach allows the discovery of interesting association rules, which can be linguistically interpreted, in large scale databases (KDD or Knowledge Discovery in Databases.) We then demonstrate its application to a distribution channel problem. It is shown how the proposed system is able to return a number of novel and potentially-interesting associations among variables. Thus, it is argued that our method has significant potential to improve the analysis of marketing and business databases in practice, especially in non-programmed decisional scenarios, as well as to assist scholarly researchers in their exploratory analysis.

    Idioma originalInglés
    Páginas (desde-hasta)532-543
    Número de páginas12
    PublicaciónIndustrial Marketing Management
    Volumen42
    N.º4
    DOI
    EstadoPublicada - may 2013

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