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A re‐interpretation of the linear quadratic model when inventories and sales are polynomially cointegrated

Anindya Banerjee and Paul Mizen

Journal of Applied Econometrics, 2006, vol. 21, issue 8, 1249-1264

Abstract: Estimation of the linear quadratic model, the workhorse of the inventory literature, traditionally takes inventories and sales to be first‐difference stationary series, and the ratio of the two variables to be stationary. However, these assumptions do not always match the properties of the data for the last two decades in the United States. We propose a model that allows for the non‐stationary characteristics of the data, using polynomial cointegration. We show that the closed‐form solution has other recent models as special cases. The resulting model performs well on aggregate and disaggregated data. Copyright © 2006 John Wiley & Sons, Ltd.

Date: 2006
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https://doi.org/10.1002/jae.892

Related works:
Journal Article: A re-interpretation of the linear quadratic model when inventories and sales are polynomially cointegrated (2006) Downloads
Working Paper: A Re-interpretation of the Linear-Quadratic Model When Inventories and Sales are Polynomially Cointegrated (2003) Downloads
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