使用SAS®复杂调查数据缺失的多重推算:基于研发调查 (RANDS) 的简要概述和示例
1Division of Research and Methodology, U.S. Centers for Desease Control and Prevention.
概括
多重归算 (MI) 是一种用于处理缺失数据的统计方法. 本文展示了SAS软件的使用情况.
科学领域:
- 统计 统计 统计 统计
- 数据科学数据科学数据科学
- 调查方法 调查方法
背景情况:
- 缺少数据是统计分析中的一个常见挑战.
- 多重推算 (MI) 是解决缺失数据的强大技术.
- SAS 软件为 MI 提供 PROC MI 和 PROC MIANALYZE 的服务.
研究的目的:
- 为了说明SAS MI程序的应用.
- 为了证明MI用于复杂的调查数据分析.
- 用RANDS数据提供一个实用的例子.
主要方法:
- 使用SAS PROC MI进行归算.
- 使用SAS PROC MIANALYZE进行聚合分析.
- 将MI应用于具有任意缺失数据模式的数据集.
主要成果:
- 在SAS中成功实现MI,用于复杂的调查数据.
- 证明有效处理缺失的数据模式.
- 从不完整的数据集生成有效的统计推理.
结论:
- SAS PROC MI 和 PROC MIANALYZE 是 MI 的有效工具.
- MI是分析缺乏值的复杂调查数据的可行方法.
- 提供的示例有助于理解和应用SAS中的MI.
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