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Random-Coefficients Logit Demand Estimation with Zero-Valued Market Shares / Jean-Pierre H. Dubé, Ali Hortaçsu, Joonhwi Joo.

NBER Working papers Available online

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Format:
Book
Author/Creator:
Dubé, Jean-Pierre H.
Contributor:
National Bureau of Economic Research.
Hortaçsu, Ali.
Joo, .
Series:
Working Paper Series (National Bureau of Economic Research) no. w26795.
NBER working paper series no. w26795
Language:
English
Physical Description:
1 online resource: illustrations (black and white);
Place of Publication:
Cambridge, Mass. National Bureau of Economic Research 2020.
Summary:
Although typically overlooked, many purchase datasets exhibit a high incidence of products with zero sales. We propose a new estimator for the Random-Coefficients Logit demand system for purchase datasets with zero-valued market shares. The identification of the demand parameters is based on a pairwise-differencing approach that constructs moment conditions based on differences in demand between pairs of products. The corresponding estimator corrects non-parametrically for the potential selection of the incidence of zeros on unobserved aspects of demand. The estimator also corrects for the potential endogeneity of marketing variables both in demand and in the selection propensities. Monte Carlo simulations show that our proposed estimator provides reliable small-sample inference both with and without selection-on- unobservables. In an empirical case study, the proposed estimator not only generates different demand estimates than approaches that ignore selection in the incidence of zero shares, it also generates better out-of-sample fit of observed retail contribution margins.
Notes:
Print version record
February 2020.

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