Bayesian Inference for Mixture Distributions

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This work considers type-I mixtures of the members of a subclass of one parameter exponential family of disributions. This subclass includes Exponential, Rayleigh, Pareto, a Burr type XII and Power function distributions. Except the Exponential, mixtures of distributions of this subclass get either no or least attention in literature so far. The elegant closed form expressions for the Bayes estimators of the parameters of each of these mixtures are presented along with their variances assuming uninformative and informative priors. The proposed informative Bayes estimators emerge advantageous in terms of their least standard errors. An extensive simulation study is conducted for each of these mixtures to highlight the properties and comparison of the proposed Bayes estimators in terms of sample sizes, censoring rates, mixing proportions and different combinations of the parameters of the component densities. A type-IV sample consisting of ordinary type-I, right censored observations is considered. Bayesian analysis of the real life mixture data sets is conducted as an application of each mixture and some interesting observations and comparisons have been observed.

Autorentext

Dr. Saleem is Co-Director, Development Finance Support Department, State Bank of Pakistan (Central Bank), Pakistan. He has extensive experience in public and private sector development and economics. Dr. Saleem holds Doctor of Philosophy (PhD) degree from Australian National University Canberra, Australia. Email: saleem.zia@sbp.org.pk

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783659287596
    • Sprache Englisch
    • Größe H220mm x B220mm x T150mm
    • Jahr 2012
    • EAN 9783659287596
    • Format Kartonierter Einband (Kt)
    • ISBN 978-3-659-28759-6
    • Titel Bayesian Inference for Mixture Distributions
    • Autor Muhammad Saleem
    • Untertitel Algebraic Expressions and Simulation Study with Industrial and Reliability Applications
    • Herausgeber LAP Lambert Academic Publishing
    • Anzahl Seiten 156
    • Genre Mathematik

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