Identification and inference with ranking restrictions

IF 1.9 3区 经济学 Q2 ECONOMICS Quantitative Economics Pub Date : 2021-08-01 DOI:10.3982/QE1277
Pooyan Amir-Ahmadi, Thorsten Drautzburg
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引用次数: 14

Abstract

We propose to add ranking restrictions on impulse‐responses to sign restrictions to narrow the identified set in vector autoregressions (VARs). Ranking restrictions come from micro data on heterogeneous industries in VARs, bounds on elasticities, or restrictions on dynamics. Using both a fully Bayesian conditional uniform prior and prior‐robust inference, we show that these restrictions help to identify productivity news shocks in the data. In the prior‐robust paradigm, ranking restrictions, but not sign restrictions alone, imply that news shocks raise output temporarily, but significantly. This holds both in an application with rankings in the form of heterogeneity restrictions and in another applications with slope restrictions as rankings. Ranking restrictions also narrow bounds on variance decompositions. For example, the bound of the contribution of news shocks to the forecast error variance of output narrows by about 30 pp at the one‐year horizon. While misspecification can be a concern with added restrictions, they are consistent with the data in our applications. Structural VAR set‐identification sign restrictions ranking restrictions heterogeneity posterior bounds Bayesian inference sampling methods productivity news C32 C53 E32
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具有等级限制的识别和推理
我们建议在符号限制的基础上增加脉冲响应的排序限制,以缩小向量自回归(var)中的识别集。排名限制来自var中异构行业的微观数据、弹性边界或动态限制。使用完全贝叶斯条件均匀先验和先验鲁棒推理,我们表明这些限制有助于识别数据中的生产力新闻冲击。在先验稳健范式中,排名限制(而非符号限制)意味着新闻冲击会暂时但显著地提高产出。这既适用于以异质性限制形式进行排名的应用程序,也适用于以坡度限制作为排名的应用程序。排名限制也缩小了方差分解的范围。例如,新闻冲击对产出预测误差方差的贡献范围在一年内缩小了约30个百分点。虽然添加的限制可能会导致规范错误,但它们与应用程序中的数据是一致的。结构VAR集合识别符号限制等级限制异质性后验界贝叶斯推理抽样方法生产率新闻
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来源期刊
CiteScore
4.10
自引率
5.60%
发文量
28
审稿时长
52 weeks
期刊最新文献
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