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Finite Mixture Of Skewed Distributions 1st Ed Vctor Hugo Lachos Dvila

  • SKU: BELL-7324862
Finite Mixture Of Skewed Distributions 1st Ed Vctor Hugo Lachos Dvila
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Finite Mixture Of Skewed Distributions 1st Ed Vctor Hugo Lachos Dvila instant download after payment.

Publisher: Springer International Publishing
File Extension: PDF
File size: 2.32 MB
Author: Víctor Hugo Lachos Dávila, Celso Rômulo Barbosa Cabral, Camila Borelli Zeller
ISBN: 9783319980287, 9783319980294, 3319980289, 3319980297
Language: English
Year: 2018
Edition: 1st ed.

Product desciption

Finite Mixture Of Skewed Distributions 1st Ed Vctor Hugo Lachos Dvila by Víctor Hugo Lachos Dávila, Celso Rômulo Barbosa Cabral, Camila Borelli Zeller 9783319980287, 9783319980294, 3319980289, 3319980297 instant download after payment.

This book presents recent results in finite mixtures of skewed distributions to prepare readers to undertake mixture models using scale mixtures of skew normal distributions (SMSN). For this purpose, the authors consider maximum likelihood estimation for univariate and multivariate finite mixtures where components are members of the flexible class of SMSN distributions. This subclass includes the entire family of normal independent distributions, also known as scale mixtures of normal distributions (SMN), as well as the skew-normal and skewed versions of some other classical symmetric distributions: the skew-t (ST), the skew-slash (SSL) and the skew-contaminated normal (SCN), for example. These distributions have heavier tails than the typical normal one, and thus they seem to be a reasonable choice for robust inference. The proposed EM-type algorithm and methods are implemented in the R package mixsmsn, highlighting the applicability of the techniques presented in the book.
This work is a useful reference guide for researchers analyzing heterogeneous data, as well as a textbook for a graduate-level course in mixture models. The tools presented in the book make complex techniques accessible to applied researchers without the advanced mathematical background and will have broad applications in fields like medicine, biology, engineering, economic, geology and chemistry.

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