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Implementing propensity score matching with network data: the effect of the General Agreement on Tariffs and Trade on bilateral trade

机译:实施倾向得分与网络数据的匹配:《关税和贸易总协定》对双边贸易的影响

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摘要

Motivated by the evaluation of the causal effect of the General Agreement on Tariffs and Trade on bilateral international trade flows, we investigate the role of network structure in propensity score matching under the assumption of strong ignorability. We study the sensitivity of causal inference with respect to the presence of characteristics of the network in the set of confounders conditionally on which strong ignorability is assumed to hold. We find that estimates of the average causal effect are highly sensitive to the node level network statistics in the set of confounders. Therefore, we argue that estimates may suffer from omitted variable bias when the network information is ignored, at least in our application.
机译:基于对《关税与贸易总协定》对双边国际贸易流量的因果关系影响的评估,我们在强可忽略性假设下研究了网络结构在倾向性得分匹配中的作用。我们研究了在混杂因素集合中网络特征的存在方面因果推理的敏感性,前提是假设存在强烈的可忽略性。我们发现,平均因果效应的估计值对混杂因素集中的节点级网络统计高度敏感。因此,我们认为,至少在我们的应用中,当忽略网络信息时,估计值可能会遗漏变量偏差。

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