Seasonal volatility in agricultural markets: modelling and empirical investigations
Тип публикации: Journal Article
Дата публикации: 2021-09-01
scimago Q1
wos Q1
white level БС1
SJR: 1.092
CiteScore: 9.8
Impact factor: 4.5
ISSN: 02545330, 15729338
Management Science and Operations Research
General Decision Sciences
Краткое описание
This paper deals with the issue of modelling the volatility of futures prices in agricultural markets. We develop a multi-factor model in which the stochastic volatility dynamics incorporate a seasonal component. In addition, we employ a maturity-dependent damping term to account for the Samuelson effect. We give the conditions under which the volatility dynamics are well defined and obtain the joint characteristic function of a pair of futures prices. We then derive the state-space representation of our model in order to use the Kalman filter algorithm for estimation and prediction. The empirical analysis is carried out using daily futures data from 2007 to 2019 for corn, cotton, soybeans, sugar and wheat. In-sample, the seasonal models clearly outperform the nested non-seasonal models in all five markets. Out-of-sample, we predict volatility peaks with high accuracy for four of these five commodities.
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Schneider L., Tavin B. Seasonal volatility in agricultural markets: modelling and empirical investigations // Annals of Operations Research. 2021.
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Schneider L., Tavin B. Seasonal volatility in agricultural markets: modelling and empirical investigations // Annals of Operations Research. 2021.
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TY - JOUR
DO - 10.1007/s10479-021-04241-7
UR - https://doi.org/10.1007/s10479-021-04241-7
TI - Seasonal volatility in agricultural markets: modelling and empirical investigations
T2 - Annals of Operations Research
AU - Schneider, Lorenz
AU - Tavin, B
PY - 2021
DA - 2021/09/01
PB - Springer Nature
SN - 0254-5330
SN - 1572-9338
ER -
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@article{2021_Schneider,
author = {Lorenz Schneider and B Tavin},
title = {Seasonal volatility in agricultural markets: modelling and empirical investigations},
journal = {Annals of Operations Research},
year = {2021},
publisher = {Springer Nature},
month = {sep},
url = {https://doi.org/10.1007/s10479-021-04241-7},
doi = {10.1007/s10479-021-04241-7}
}
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