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'Data Monkeys': A Procedural Model of Extrapolation from Partial Statistics

机译:“数据猴子”:部分统计局推断的程序模型

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I present a behavioural model of a "data analyst" who extrapolates a fully specified probability distribution over observable variables from a collection of statistical data sets that cover partially overlapping sets of variables. The analyst employs an iterative extrapolation procedure, whose individual rounds are akin to the stochastic regression method of imputing missing data. Users of the procedure's output fail to distinguish between raw and imputed data, and it functions as their practical belief. I characterize the ways in which this belief distorts the correlation structure of the underlying data generating process-focusing on cases in which the distortion can be described as the imposition of a causal model (represented by a directed acyclic graph over observable variables) on the true distribution.
机译:我介绍了一个“数据分析师”的行为模型,该行为模型是从覆盖部分重叠变量集的统计数据集的集合中,将完全指定的概率分布推断出完全指定的概率分布。 分析师采用迭代外推过程,其单独的回合类似于忽略缺失数据的随机回归方法。 程序的输出的用户无法区分原始数据和避税数据,并且它起到其实际信仰。 我的特征在于这种信仰扭曲底层数据的相关结构的方式,在这种情况下,在可以将失真描述为判例的情况下的潜在数据的相关结构(由可观察变量上的指向的无循环图表示)的拼版 分配。

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