4.6 Article

Using angler characteristics and attitudinal data to identify environmental preference classes: A latent-class model

期刊

ENVIRONMENTAL & RESOURCE ECONOMICS
卷 34, 期 1, 页码 91-115

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SPRINGER
DOI: 10.1007/s10640-005-3794-7

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attitudinal data; E-M algorithm; latent-class attitudinal model; latent-class joint model

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A latent-class model of environmental preference groups is developed and estimated with only the answers to a set of attitudinal questions. Economists do not typically use this type of data in estimation. Group membership is latent/unobserved. The intent is to identify and characterize heterogeneity in the preferences for environmental amenities in terms of a small number of preference groups. The application is to preferences over the fishing characteristics of Green Bay. Anglers answered a number of attitudinal questions, including the importance of boat fees, species catch rates, and fish consumption advisories on site choice. The results suggest that Green Bay anglers separate into a small number of distinct classes with varying preferences and willingness to pay for a PCB-free Green Bay. The probability that an angler belongs to each class is estimated as function of observable characteristics of the individual. Estimation is with the expectation-maximization (E-M) algorithm, a technique new to environmental economics that can be used to do maximum-likelihood estimation with incomplete information. As explained, a latent-class model estimated with attitudinal data can be melded with a latent-class choice model.

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