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  • 标题:FORECASTING INDONESIAN INFLATION WITHIN AN INFLATION-TARGETING FRAMEWORK: DO LARGE-SCALE MODELS PAY OFF?
  • 本地全文:下载
  • 作者:Solikin M. Juhro ; Bernard Njindan Iyke
  • 期刊名称:Bulletin Ekonomi Moneter dan Perbankan
  • 印刷版ISSN:1410-8046
  • 电子版ISSN:2460-9196
  • 出版年度:2019
  • 卷号:22
  • 期号:4
  • 页码:423-436
  • DOI:10.21098/bemp.v22i4.1235
  • 出版社:Bank Indonesia
  • 摘要:We examine the usefulness of large-scale inflation forecasting models in Indonesiawithin an inflation-targeting framework. Using a dynamic model averaging approachto address three issues the policymaker faces when forecasting inflation, namely,parameter, predictor, and model uncertainties, we show that large-scale modelshave significant payoffs. Our in-sample forecasts suggest that 60% of 15 exogenouspredictors significantly forecast inflation, given a posterior inclusion probability cut-offof approximately 50%. We show that nearly 87% of the predictors can forecast inflationif we lower the cut-off to approximately 40%. Our out-of-sample forecasts suggest thatlarge-scale inflation forecasting models have substantial forecasting power relative tosimple models of inflation persistence at longer horizons.
  • 关键词:Forecasting inflation; Inflation-targeting framework; Large-scale models; Dynamic model averaging
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