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Approximations of choice probabilities in mixed logit models
Authors:N. Kalouptsidis  V. Psaraki  
Affiliation:aDepartment of Informatics and Telecommunications, Division of Communications and Signal Processing, University of Athens, Panepistimiopolis, 15784 Athens, Greece;bNational Technical University of Athens, 5 Iroon Polytechniou Str, Zografou Campus, 15773 Athens, Greece
Abstract:This paper is concerned with the approximate computation of choice probabilities in mixed logit models. The relevant approximations are based on the Taylor expansion of the classical logit function and on the high order moments of the random coefficients. The approximate choice probabilities and their derivatives are used in conjunction with log likelihood maximization for parameter estimation. The resulting method avoids the assumption of an apriori distribution for the random tastes. Moreover experiments with simulation data show that it compares well with the simulation based methods in terms of computational cost.
Keywords:Discrete choice   Random utility maximization models   Approximate choice probabilities   Mixed logit
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