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农户参与小农水管护满意度的影响因素分析——基于江西省农户调研数据 被引量:2
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作者 翁贞林 王晓娜 《农业经济与管理》 2013年第4期53-62,共10页
利用江西省1196个农户的调查数据,采用结构方程式模型(SEM)分析方法,在费耐尔逻辑模型的基础上构建农户满意度模型,研究农户对小农水工程管护满意度及其影响因素。研究结果表明,在农户满意度影响因素模型中,农户资源禀赋对满意度没有显... 利用江西省1196个农户的调查数据,采用结构方程式模型(SEM)分析方法,在费耐尔逻辑模型的基础上构建农户满意度模型,研究农户对小农水工程管护满意度及其影响因素。研究结果表明,在农户满意度影响因素模型中,农户资源禀赋对满意度没有显著的正向影响,但是可以通过与农户认知因素的相互作用,对农户满意度产生间接的正向影响;用水协会组织特征和农户认知因素对农户小农水管护的满意度有显著的正向影响。根据研究结论提出相应的政策建议。 展开更多
关键词 小农水工程管护 农户满意度 影响因素 结构方程估计
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Bayesian Empirical Likelihood Estimation of Quantile Structural Equation Models 被引量:6
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作者 ZHANG Yanqing TANG Niansheng 《Journal of Systems Science & Complexity》 SCIE EI CSCD 2017年第1期122-138,共17页
Structural equation model(SEM) is a multivariate analysis tool that has been widely applied to many fields such as biomedical and social sciences. In the traditional SEM, it is often assumed that random errors and exp... Structural equation model(SEM) is a multivariate analysis tool that has been widely applied to many fields such as biomedical and social sciences. In the traditional SEM, it is often assumed that random errors and explanatory latent variables follow the normal distribution, and the effect of explanatory latent variables on outcomes can be formulated by a mean regression-type structural equation. But this SEM may be inappropriate in some cases where random errors or latent variables are highly nonnormal. The authors develop a new SEM, called as quantile SEM(QSEM), by allowing for a quantile regression-type structural equation and without distribution assumption of random errors and latent variables. A Bayesian empirical likelihood(BEL) method is developed to simultaneously estimate parameters and latent variables based on the estimating equation method. A hybrid algorithm combining the Gibbs sampler and Metropolis-Hastings algorithm is presented to sample observations required for statistical inference. Latent variables are imputed by the estimated density function and the linear interpolation method. A simulation study and an example are presented to investigate the performance of the proposed methodologies. 展开更多
关键词 Bayesian empirical likelihood estimating equations latent variable models MCMC algo-rithm quantile regression structural equation models.
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