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Willingness-to-pay estimates using the double-bounded dichotomous-choice contingent valuation format: a test for validity and precision in a bayesian framework

机译:使用双向二分选择选择条件估值格式的支付意愿估计:贝叶斯框架中的有效性和准确性检验

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摘要

The Double-Bounded Dichotomous-Choice (DB-DC) Contingent Valuation format is thought to yield more precise welfare estimates. Questions remain about its validity. The initial bid may represent information with which respondents update their willingness to pay. A Bayesian model of respondent decision making is estimated for two data sets. The results indicate updating or shifts in respondent willingness to pay between iterated valuations. Nonparametric testing of the welfare estimates reveals that the model incorporating updating yields different values from the standard model. The expected increases in the precision of the DB-DC welfare estimates are lost when updating occurs.
机译:双重定额选择(DB-DC)或有估值格式被认为可以产生更精确的福利估计。关于其有效性仍然存在疑问。初始出价可以代表受访者用来更新其支付意愿的信息。针对两个数据集估计了贝叶斯响应者决策模型。结果表明,受访者在重复评估之间支付意愿的更新或变化。福利估算的非参数检验表明,包含更新的模型与标准模型产生不同的值。更新发生时,DB-DC福利估计的精度预期的增加会丢失。

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