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Resumen de A general trimming approach to robust cluster analysis

Luis Angel García Escudero Árbol académico, Alfonso Gordaliza Ramos Árbol académico, Carlos Matrán Bea Árbol académico, Agustín Mayo Iscar Árbol académico

  • We introduce a new method for performing clustering with the aim of ¯tting clusters with di®erent scatters and weights. It is designed by allowing to handle a proportion ® of contaminating data to guarantee the robustness of the method.

    As a characteristic feature, restrictions on the ratio between the maximum and the minimum eigenvalues of the groups scatter matrices are introduced. This makes the problem to be well-de¯ned and guarantees the consistency of the sample solutions to the population ones.

    The method covers a wide range of clustering approaches depending on the strength of the chosen restrictions. The proposal includes an algorithm (the TCLUST method) for approximately solving the sample problem.


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