调整模型错误规范在估计人口总数根据排列采集样本通过平衡通过平衡的调整
Shakeel Ahmed1, Javid Shabbir2, Huda M Alshanbari3
1School of Natural Sciences, NUST, H-12 Islamabad, Pakistan.
Heliyon
|February 7, 2024
概括
这项研究引入了一种新方法,用于使用排序集抽样来估计人口总数. 与简单的随机抽样相比,提出的技术减少了偏差并提高了效率,特别是当统计模型被错误指定时.
科学领域:
- 统计 统计 统计 统计
- 调查方法 调查方法
背景情况:
- 基于模型的估计依赖于正确的模型规范.
- 错误的规范偏差可能导致统计建模中不可靠的估计.
- 现有的采样方法可能无法充分解决模型的错误规格.
研究的目的:
- 根据无替代的排列采集样本对人口总数提出一个新型估计器.
- 为了解决统计估计中错误指定的工作模型引起的偏差.
- 提高调查估计的稳定性和效率.
主要方法:
- 在辅助字符的基础函数上应用平衡条件.
- 使用排序集采样,没有替代方案.
- 考虑错误指定的基础函数模型 (同质,线性,比例) 的特殊情况.
主要成果:
- 拟议的抽样机制显著减少了错误规范偏差.
- 开发的总估计器显示出比简单的随机抽样更高的效率.
- 该方法在统计分析中保持了对模型失败的稳定性.
结论:
- 带有平衡条件的排序集采样提供了一种可靠的估计方法.
- 即使工作模型偏离了真实的人口模型,建议的估计器也有效.
- 这种方法在实际应用中提高了调查估计的可靠性.
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