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Skew–Normal Mean–Variance Mixture of Birnbaum–Saunders Distribution and Its Associated Inference and Application
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نویسنده
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tamandi mostafa ,negarestani hossein ,jamalizadeh ahad
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منبع
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journal of the iranian statistical society - 2019 - دوره : 18 - شماره : 2 - صفحه:87 -113
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چکیده
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This paper presents a skew-normal mean-variance mixture based on birnbaum-saunders (snmvbs) distribution and discusses some of its key properties. the sn-mvbs distribution can be thought as a flexible extension of the normal mean-variancemixture based on birnbaum-saunders (nmvbs) distribution as it possesses one ad-ditional shape parameter for providing more flexibility with skewness and kurtosis.next, we develop a computationally feasible ecm algorithm for the maximum like-lihood estimation of the model parameters. asymptotic standard errors of the mlestimates are obtained through an approximation of the observed information matrix.finally, the usefulness of the proposed model and its fitting method are illustratedthrough a monte-carlo simulation as well as three real-life datasets.
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کلیدواژه
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Birnbaum-Saunders ,ECM Algorithm ,Observed Information Matrix ,Robustness ,Scale-Shape Mixtures
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آدرس
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vali-e-asr university of rafsanjan, department of statistics, Iran, shahid bahonar university of kerman, young researchers society, faculty of mathematics and computers, department of statistics, Iran, shahid bahonar university of kerman, faculty of mathematics and computers, department of statistics, Iran
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پست الکترونیکی
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a.jamalizadeh@uk.ac.ir
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Authors
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