因子分数之间的非参数回归:非线性结构方程模型的动机和诊断
Steffen Grønneberg1, Julien Patrick Irmer2
1Department of Economics, BI Norwegian Business School, Oslo, 0484, Norway. steffeng@gmail.com.
这项研究引入了一个新的框架,用于分析结构方程模型,使用正确指定的测量模型. 它为估计潜在变量关系提供了改进的方法,在模拟中优于现有的技术.
科学领域:
- 统计 统计 统计 统计
- 计量经济学 计量经济学 计量经济学
- 心理测量 心理测量 心理测量
背景情况:
- 结构方程模型 (SEMs) 被广泛用于分析观察到的和潜伏变量之间的复杂关系.
- 在SEM的结构部分准确地指定功能形式对于有效的推理至关重要.
- 现有的方法可能缺乏稳定性或理论依据来诊断功能形式的错误规范.
研究的目的:
- 提出一种新的框架来激励和诊断SEM中的功能形式.
- 在测量模型是线性确认因子模型时,解决结构组件的错误规格问题.
- 为内源潜变量条件预期提供理论上合理的估计.
主要方法:
- 基于人口的数学分析,以获得非对称的识别结果.
- 为条件期望开发理论上有充分依据的估计器.
- 模拟研究,以评估与替代方案相对应的拟议估计器的性能.
- 用非参数回归方法应用巴特莱特因子得分.
主要成果:
- 建立了条件期望的非对称识别结果.
- 拟议的估计器在与现有方法相比,在模拟研究中表现良好.
- 该框架有效地帮助诊断SEM中的功能形式错误规范.
结论:
- 开发的框架为SEM中的功能形式规范提供了一个强大的方法.
- 使用巴特莱特因子得分的推估计器提供了一个实用和有效的解决方案.
- 这项研究有助于更可靠地分析潜在变量模型.
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