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Forecasting Real House Price of the U.S.: An Analysis Covering 1890 to 2012

Author

Listed:
  • Goodness C. Aye

    (Department of Economics, University of Pretoria)

  • Rangan Gupta

    (Department of Economics, University of Pretoria)

Abstract

This paper evaluates the ability of Bayesian shrinkage-based dynamic predictive regression models estimated with hierarchical priors (Adaptive Jefferys, Adaptive Student-t, Lasso, Fussed Lasso and Elastic Net priors) and non-hierarchical priors (Gaussian, Lasso-LARS, Lasso-Landweber) in forecasting the U.S. real house price growth. We also compare results with forecasts from bivariate OLS regressions and principal component regression. We use annual dataset on 10 macroeconomic predictors spanning the period 1890 to 2012. Using an out-of-sample period of 1917 to 2012, our results based on MSE and McCracken (2007) MSE-F statistic, indicate that in general, the non-hierarchical Bayesian shrinkage estimators perform better than their hierarchical counterparts as well as the least square estimators. The Bayesian shrinkage estimated with Lasso-Landweber is the best-suited model for forecasting the U.S. real house price. Among the least square models, the individual regression with house price regressed on the fiscal policy variable outperforms the rest. Also results from Lasso-Landweber portray the fiscal policy variable as the best predictor of the U.S. house prices especially in the recent times while the short-term interest rate and real construction cost also did well at the beginning and middle of the sample.

Suggested Citation

  • Goodness C. Aye & Rangan Gupta, 2013. "Forecasting Real House Price of the U.S.: An Analysis Covering 1890 to 2012," Working Papers 201362, University of Pretoria, Department of Economics.
  • Handle: RePEc:pre:wpaper:201362
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    References listed on IDEAS

    as
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    More about this item

    Keywords

    Real house price; forecasting; predictive; shrinkage; hierarchical; non-hierarchical; least squares;
    All these keywords.

    JEL classification:

    • C32 - Mathematical and Quantitative Methods - - Multiple or Simultaneous Equation Models; Multiple Variables - - - Time-Series Models; Dynamic Quantile Regressions; Dynamic Treatment Effect Models; Diffusion Processes; State Space Models
    • C53 - Mathematical and Quantitative Methods - - Econometric Modeling - - - Forecasting and Prediction Models; Simulation Methods
    • R31 - Urban, Rural, Regional, Real Estate, and Transportation Economics - - Real Estate Markets, Spatial Production Analysis, and Firm Location - - - Housing Supply and Markets

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