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Please use this identifier to cite or link to this item: http://purl.org/purl/3066

Title: Bayesian Inference in Exponential and Pareto populations in the presence of Outliers
Authors: Jeevanand, E S
Dr.Unnikrishnan Nair, N
Keywords: Bayesian inference
Parameters
Pareto Parameters
Pareto model statistics
Exponential parameters
Hyper-parameter
Issue Date: 20-Dec-1993
Abstract: This thesis Entitled Bayesian inference in Exponential and pareto populations in the presence of outliers. The main theme of the present thesis is focussed on various estimation problems using the Bayesian appraoch, falling under the general category of accommodation procedures for analysing Pareto data containing outlier. In Chapter II. the problem of estimation of parameters in the classical Pareto distribution specified by the density function. In Chapter IV. we discuss the estimation of (1.19) when the sample contain a known number of outliers under three different data generating mechanisms, viz. the exchangeable model. Chapter V the prediction of a future observation based on a random sample that contains one contaminant. Chapter VI is devoted to the study of estimation problems concerning the exponential parameters under a k-outlier model.
Description: Department of Mathematics and Statistics, Cochin University of Science and Technoloy
URI: http://dyuthi.cusat.ac.in/purl/3066
Appears in Collections:Faculty of Sciences

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