Too Many Shocks Spoil the Interpretation

A. Pagan, Tim Robinson
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引用次数: 3

Abstract

We show that when a model has more shocks than observed variables the estimated filtered and smoothed shocks will be correlated. This is despite no correlation being present in the data generating process. Additionally the estimated shock innovations may be autocorrelated. These correlations limit the relevance of impulse responses, which assume uncorrelated shocks, for interpreting the data. Excess shocks occur frequently, e.g. in Unobserved-Component (UC) models, filters, including Hodrick- Prescott (1997), and some Dynamic Stochastic General Equilibrium (DSGE) models. Using several UC models and an estimated DSGE model, Ireland (2011), we demonstrate that sizable correlations among the estimated shocks can result.
太多的冲击破坏了解释
我们表明,当一个模型具有比观测变量更多的冲击时,估计的滤波和平滑冲击将是相关的。尽管在数据生成过程中不存在相关性。此外,估计的冲击创新可能是自相关的。这些相关性限制了脉冲响应的相关性,它假设不相关的冲击,用于解释数据。过度冲击经常发生,例如在未观察成分(UC)模型、滤波器(包括Hodrick- Prescott(1997))和一些动态随机一般均衡(DSGE)模型中。使用几个UC模型和估计的DSGE模型,爱尔兰(2011),我们证明了估计的冲击之间可能产生相当大的相关性。
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