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   bayesian parameter estimation in addiction model  
   
نویسنده al-khairullah najla a. ,albaldawi tasnim hasan kadhim
منبع international journal of nonlinear analysis and applications - 2022 - دوره : 13 - شماره : 1 - صفحه:3059 -3071
چکیده    In this paper, we investigated the performance of bayesian computational methods for estimating the parameters of the multinomial logistic regression model. we discussed two of the most common bayesian computational algorithms: the random walk metropolis-hastings (rwm) and slice algorithms and their application to estimating the parameters of the addiction model as well as comparing the performance of these algorithms using the mean square error (mse) criterion. the results revealed that the performance of the algorithms is excellent, with a slight superiority to the rwm algorithm.
کلیدواژه multinomial logistic regression ,mcmc ,random walk metropolis-hasting algorithm ,slice sampling
آدرس university of baghdad, college of science, department of mathematics, iraq, university of baghdad, college of science, department of mathematics, iraq
پست الکترونیکی tasnim.h@sc.uobaghdad.edu.iq
 
     
   
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