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  4. Experimental analysis of the implicit choice set generation using the Constrained Multinomial Logit model
 
conference presentation

Experimental analysis of the implicit choice set generation using the Constrained Multinomial Logit model

Bierlaire, Michel  
•
Hurtubia, Ricardo  
•
Flötteröd, Gunnar  
2009
Workshop on discrete choice models

Discrete choice models are defined conditional to the knowledge of the actual choice set by the analyst. The common practice for is to assume that individual-based choice sets can be deterministically generated based on the choice context and the characteristics of the decision maker. There are many situations where this assumption is not valid or not applicable, and probabilistic choice set formation procedures must be considered. The Constrained Multinomial Logit model (CMNL) has recently been proposed by Martinez et al. (2009) as a convenient way to deal with this issue, as it is also appropriate for models with a large choice set. In this paper, we analyze how the implicit choice set generation of the CMNL compares to the explicit choice set generation as described by Manski (1977). The results based on synthetic data show that the implicit choice set generation model may be a poor approximation of the explicit model. (joint work with Ricardo Hurtubia and Gunnar Flötteröd)

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Type
conference presentation
Author(s)
Bierlaire, Michel  
Hurtubia, Ricardo  
Flötteröd, Gunnar  
Date Issued

2009

URL

URL

http://transp-or2.epfl.ch/talks/WDCA09.pdf
Written at

EPFL

EPFL units
TRANSP-OR  
Event nameEvent placeEvent date
Workshop on discrete choice models

Ecole Polytechnique Fédérale de Lausanne, Lausanne, Switzerland

August 27, 2009

Available on Infoscience
September 30, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/54658
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