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Dokumenttyp:
Zeitungsartikel
Autor(en):
Sahin, Özge and Czado, Claudia
Titel:
Vine copula mixture models and clustering for non-Gaussian data
Abstract:
The majority of finite mixture models suffer from not allowing asymmetric tail dependencies within components and not capturing non-elliptical clusters in clustering applications. Since vine copulas are very flexible in capturing these types of dependencies, we propose a novel vine copula mixture model for continuous data. We discuss the model selection and parameter estimation problems and further formulate a new model-based clustering algorithm. The use of vine copulas in clustering allows for...     »
Stichworte:
Clustering, copula, dependence, mixture model, non-Gaussian, vine copula
Dewey Dezimalklassifikation:
510 Mathematik
Zeitschriftentitel:
Preprint
Jahr:
2021
Jahr / Monat:
2021-02
Quartal:
1. Quartal
Monat:
Feb
WWW:
Arxiv
Status:
Preprint / submitted
TUM Einrichtung:
Professur für Angewandte Mathematische Statistik
Format:
Text
 BibTeX