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基于平衡单水平轮换的连续性抽样估计方法研究
引用本文:陈光慧,刘建平. 基于平衡单水平轮换的连续性抽样估计方法研究[J]. 统计研究, 2008, 25(10): 81-85
作者姓名:陈光慧  刘建平
基金项目:国家社会科学基金,全国统计科学研究重点项目
摘    要:内容提要:针对现存的各种单水平轮换模式和估计方法,本文提出一套统一的平衡单水平轮换模式。在此轮换模式下,引入两类相关关系,运用线性无偏估计方法,并通过使不同类型估计量方差的加权总和最小的方法确定最优系数,从而得到最优线性无偏估计量,不仅能够减少甚至消除估计量偏差的影响,还能使得连续性调查的整体抽样误差最小,适合估计各种类型的估计量。

关 键 词:关键词:平衡单水平轮换  连续性调查  抽样估计  轮换偏差   

The Study of Successive Sampling Estimation Methods Based on Balanced One-Level Rotation
Chen Guanghui,Liu Jianping. The Study of Successive Sampling Estimation Methods Based on Balanced One-Level Rotation[J]. Statistical Research, 2008, 25(10): 81-85
Authors:Chen Guanghui  Liu Jianping
Abstract:Abstract: This paper puts forward a unified balanced one-level rotation scheme according to different one-level rotation schemes and estimation methods. Under this balanced rotation scheme, two types of correlation and the method of linear unbiased estimation are considered. Through minimizing the weighted sum of variances, we can get one set of the best coefficients and obtain best linear unbiased estimators which not only reduce, even eliminate the bias of estimators, but also make the whole of sampling error from successive survey reach the least and are fitted to estimate different types of estimators.
Keywords:Balanced  one-level  rotation  Successive  survey  Sampling  estimation  Rotation  bias
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