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Forecasting interest rates through Vasicek and CIR models: A partitioning approach
Authors:Giuseppe Orlando  Rosa Maria Mininni  Michele Bufalo
Affiliation:1. Department of Economics and Finance, Università degli Studi di Bari Aldo Moro, Bari, Italy;2. Department of Mathematics, Università degli Studi di Bari Aldo Moro, Bari, Italy;3. Department of Methods and Models for Economics, Territory and Finance, Università degli Studi di Roma La Sapienza, Rome, Italy
Abstract:The aim of this paper is to propose a new methodology that allows forecasting, through Vasicek and CIR models, of future expected interest rates based on rolling windows from observed financial market data. The novelty, apart from the use of those models not for pricing but for forecasting the expected rates at a given maturity, consists in an appropriate partitioning of the data sample. This allows capturing all the statistically significant time changes in volatility of interest rates, thus giving an account of jumps in market dynamics. The new approach is applied to different term structures and is tested for both models. It is shown how the proposed methodology overcomes both the usual challenges (e.g., simulating regime switching, volatility clustering, skewed tails) as well as the new ones added by the current market environment characterized by low to negative interest rates.
Keywords:CIR model  interest rates  forecasting and simulation  Vasicek model
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