Forecasting Natural Gas Prices in Real Time

Baumeister, C., Huber, F., Lee, T.K., & Ravazzolo, F. (2025). Forecasting Natural Gas Prices in Real Time. Journal of Applied Econometrics 10.1002/jae.70018. (In Press)

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Abstract

This paper provides a comprehensive analysis of the forecastability of the real price of natural gas in the United States at the monthly frequency considering a universe of models that differ in complexity and economic content. We find that considerable reductions in mean‐squared prediction error relative to a no‐change benchmark can be achieved in real time for horizons of up to 2 years. A particularly promising model is a vector autoregressive (VAR) model that includes the fundamental determinants of supply and demand for natural gas. To capture real‐time data constraints of these and other predictors, we assemble a rich database of historical vintages from multiple sources. We also compare our model‐based forecasts to model‐free forecasts provided by experts and futures markets. Given that no single forecasting method dominates, we show that combining forecasts from individual models selected in real time using the model confidence set as a novel criterion for dynamic model selection delivers the most accurate forecasts.

Item Type: Article
Uncontrolled Keywords: expert forecasts, model confidence set, natural gas futures, out-of-sample fore, casting, real-time data vintages, temperature anomalies
Research Programs: Biodiversity and Natural Resources (BNR)
Biodiversity and Natural Resources (BNR) > Integrated Biosphere Futures (IBF)
Depositing User: Luke Kirwan
Date Deposited: 13 Nov 2025 09:01
Last Modified: 13 Nov 2025 09:01
URI: https://pure.iiasa.ac.at/20981

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