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Model diagnostics for remote access regression servers

机译:远程访问回归服务器的模型诊断

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To protect public-use microdata, one approach is not to allow users access to the microdata. Instead, users submit analyses to a remote computer that reports back basic output from the fitted model, such as coefficients and standard errors. To be most useful, this remote server also should provide some way for users to check the fit of their models, without disclosing actual data values. This paper discusses regression diagnostics for remote servers. The proposal is to release synthetic diagnostics―i.e. simulated values of residuals and dependent and independent variables-constructed to mimic the relationships among the real-data residuals and independent variables. Using simulations, it is shown that the proposed synthetic diagnostics can reveal model inadequacies without substantial increase in the risk of disclosures. This approach also can be used to develop remote server diagnostics for generalized linear models.
机译:为了保护公共用途的微数据,一种方法是不允许用户访问微数据。取而代之的是,用户将分析结果提交给远程计算机,该计算机将报告拟合模型的基本输出,例如系数和标准误差。为了最有用,此远程服务器还应该为用户提供某种方式来检查其模型是否合适,而无需透露实际数据值。本文讨论了远程服务器的回归诊断。该提议是发布综合诊断-即残差以及因变量和自变量的模拟值构造为模拟真实数据残差和自变量之间的关系。使用模拟表明,所提出的综合诊断程序可以揭示模型的不足,而不会显着增加披露风险。该方法还可以用于为广义线性模型开发远程服务器诊断。

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