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首页> 外文期刊>Journal of applied econometrics >Should I stay or should I go? A latent threshold approach to large-scale mixture innovation models
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Should I stay or should I go? A latent threshold approach to large-scale mixture innovation models

机译:我是该留下还是该离开?大规模混合创新模型的潜在阈值方法

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摘要

We propose a straightforward algorithm to estimate large Bayesian time-varying parameter vector autoregressions with mixture innovation components for each coefficient in the system. The computational burden becomes manageable by approximating the mixture indicators driving the time-variation in the coefficients with a latent threshold process that depends on the absolute size of the shocks. Two applications illustrate the merits of our approach. First, we forecast the US term structure of interest rates and demonstrate forecast gains relative to benchmark models. Second, we apply our approach to US macroeconomic data and find significant evidence for time-varying effects of a monetary policy tightening.
机译:我们提出了一种简单的算法来估计系统中每个系数的混合创新组件的大型贝叶斯时变参数向量自回报率。计算负担通过近似于驱动系数的时间变化的混合指示器具有潜在阈值处理而可以管理,这取决于对冲击的绝对尺寸的潜在阈值处理。两个应用程序说明了我们方法的优点。首先,我们预测利率的美国术语结构,并展示相对于基准模型的预测收益。其次,我们将我们的方法应用于我们宏观经济数据,并找到了重大效应货币政策收紧的重要证据。

著录项

  • 来源
    《Journal of applied econometrics 》 |2019年第5期| 621-640| 共20页
  • 作者单位

    Univ Salzburg SCEUS Salzburg Austria;

    WU Vienna Univ Econ & Business Inst Stat & Math Welthandelspl 1 Bldg D4 4th Floor A-1020 Vienna Austria;

    Oesterreichische Natl Bank OeNB Foreign Res Div AUSA Vienna Austria;

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  • 正文语种 eng
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