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Three-way weighted combination-entropies based on three-layer granular structures

  • Autores: Wang Jun, Tang Lingyu, Zhang Xianyong, Luo Yuyan
  • Localización: Applied Mathematics and Nonlinear Sciences, ISSN-e 2444-8656, Vol. 2, Nº. 2, 2017, págs. 329-340
  • Idioma: inglés
  • DOI: 10.21042/amns.2017.2.00002
  • Texto completo no disponible (Saber más ...)
  • Resumen
    • Rough set theory is an important theory for the uncertain information processing. The information theoretic measures have been introduced into rough set theory and provided a new effective method in uncertainty measurement and attribute reduction. However, most of them did not consider the hierarchical structure of a decision table (D-Table). Thus, this paper concretely constructs three-way weighted combination-entropies based on the D-Table's three-layer granular structures and Bayes' theorem from a new perspective, and reveals the granulation monotonicity and systematic relationships of three-way weighted combination-entropies. The relevant conclusion provides a more complete and updated interpretation of granular computing for the uncertainty measurement, and it also establishes a more effective basis for the quantitative application in attribute reduction.


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