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Multivariate count data regression models with individual panel data from an on-site sample

机译:多变量计数数据回归模型,具有来自现场样本的单个面板数据

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The purpose of this paper is to consider the problem of controlling for on-site sampling in the context of a system (or panel) of demand equations. Specifically, in the context of recreation demand, we are concerned with the situation in which survey respondents are asked to provide information not only about the actual trips to a specific site (observed behavior), but also their anticipated trips (either under current conditions or given price and quality changes). A Multivariate Poisson-log normal (MPLN) model and a seemingly unrelated negative binomial (SUNB) model are used to jointly model the observed and contingent behavior data and to correct for on-site sampling.
机译:本文的目的是考虑在需求方程系统(或面板)的情况下控制现场采样的问题。具体来说,在娱乐需求的背景下,我们关注的情况是,受访者被要求提供的信息不仅包括到特定地点的实际旅行(观察到的行为),还包括他们的预期旅行(在当前条件下或给定价格和质量的变化)。多元泊松对数正态(MPLN)模型和看似无关的负二项式(SUNB)模型用于联合建模观察到的或偶然的行为数据并校正现场采样。

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