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Model Selection and Tests for Non Nested Contingent Valuation Models: An Assessment of Methods

机译:非嵌套竞争估价模型的模型选择和测试:对方法的评估

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摘要

Distributional assumptions are crucial in the estimation of the value of public projects assessed by means of contingent valuation analyses, and it would seem obvious that tests for model specification should play an important part in the statistical analysis. It can be observed, though, that when the competing hypotheses are non nested, the choice of the model is often based on heuristic grounds, or, at most, on deterministic selection model criteria such as Akaike's (1973). In this paper we study two alternative, probabilistic, approaches to checking model specification, that, like Akaike's, are based on the Kullback-Leibler Information Criterion (KLIC): the model selection testing proposed by Vuong (1989) and the non nested model test proposed by Cox, in the simulated approach of Pesaran and Pesaran (1993). The three approaches are confronted by comparing their performance in selecting among different models applied to simulated contingent valuation data. Our results seem to warrant the use of the Cox test for medium-large size samples, while for small size samples its performance is less satisfactory. When the data set is small, use of a model selection method may be preferred to model testing. In this case, the Vuong model selection testing is recommended as an alternative to the deterministic approach of the Akaike's criterion.
机译:分布假设对于通过或有估值分析评估的公共项目的价值评估至关重要,并且显然,对模型规格的检验应该在统计分析中发挥重要作用。但是,可以观察到,当竞争假设不嵌套时,模型的选择通常基于启发式依据,或者最多基于确定性选择模型标准,例如Akaike's(1973)。在本文中,我们研究了两种替代的概率检查模型规格的方法,这些方法与Akaike一样,都是基于Kullback-Leibler信息标准(KLIC)的:Vuong(1989)提出的模型选择测试和非嵌套模型测试由Cox在Pesaran和Pesaran(1993)的模拟方法中提出。通过比较它们在选择用于模拟或有估值数据的不同模型中的性能来面对三种方法。我们的结果似乎证明对中大尺寸样品使用Cox测试,而对小尺寸样品,其性能较差。当数据集较小时,使用模型选择方法可能比模型测试更可取。在这种情况下,建议使用Vuong模型选择测试作为Akaike准则确定性方法的替代方法。

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