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Resumen de On dichotomous choice contingent valuation data analysis: Semiparametric methods and genetic programming

Marcos Alvarez Díaz Árbol académico, Manuel González Gómez, Angeles Saavedra González Árbol académico, Jacobo de Uña Álvarez Árbol académico

  • The aim of this paper is twofold. Firstly, we introduce a novel semiparemetric technique called Genetic Programming to estimate and explain the willingness to pay to maintain environmental conditions of a specific natural park in Spain. To the authors’ knowledge, this is the first time in which Genetic Programming is employed in Contingent Valuation. Secondly, we investigate the existence of bias due to the functional rigidity of the traditional parametric techniques commonly employed in a Contingent Valuation problem. We applied standard parametric methods (Logit and Probit) and compared with results obtained using semiparametric methods (a Proportional Hazard model and a genetic program). The parametric and semiparametric methods give similar results in terms of the variables finally chosen in the model. Therefore, the results confirm the internal validity of our Contingent Valuation exercise.


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