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SynLBD 2.0: Improving the synthetic Longitudinal Business Database

机译:SynLBD 2.0:改进综合纵向业务数据库

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摘要

In most countries, national statistical agencies do not release establishment-level business microdata, because doing so represents too large a risk to establishments' confidentiality. Agencies potentially can manage these risks by releasing synthetic microdata, i.e., individual establishment records simulated from statistical models designed to mimic the joint distribution of the underlying observed data. Previously, we used this approach to generate a public-use version - now available for public use - of the U.S. Census Bureau's Longitudinal Business Database (LBD), a longitudinal census of establishments dating back to 1976. While the synthetic LBD has proven to be a useful product, we now seek to improve and expand it by using new synthesis models and adding features. This article describes our efforts to create the second generation of the SynLBD, including synthesis procedures that we believe could be replicated in other contexts.
机译:在大多数国家/地区中,国家统计机构不会发布企业级别的业务微数据,因为这样做会对企业的机密性造成太大的风险。代理商有可能通过发布合成的微数据来管理这些风险,即从旨在模拟基础观察数据的联合分布的统计模型中模拟的个人机构记录。以前,我们使用这种方法来生成美国人口普查局纵向业务数据库(LBD)的公共版本(现已可供公众使用),该版本是1976年的纵向机构普查。作为一种有用的产品,我们现在寻求通过使用新的综合模型和添加功能来改进和扩展它。本文介绍了我们创建第二代SynLBD的努力,包括我们认为可以在其他情况下复制的合成过程。

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