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Demand Estimation with Text and Image Data

Author

Listed:
  • Compiani, Giovanni
  • Morozov, Ilya
  • Seiler, Stephan

Abstract

We propose a demand estimation method that allows researchers to estimate substitution patterns from unstructured image and text data. We first employ a series of machine learning models to measure product similarity from products' images and textual descriptions. We then estimate a nested logit model with product-pair specific nesting parameters that depend on the image and text similarities between products. Our framework does not require collecting product attributes for each category and can capture product similarity along dimensions that are hard to account for with observed attributes. We apply our method to a dataset describing the behavior of Amazon shoppers across several categories and show that incorporating texts and images in demand estimation helps us recover a flexible cross-price elasticity matrix.

Suggested Citation

  • Compiani, Giovanni & Morozov, Ilya & Seiler, Stephan, 2023. "Demand Estimation with Text and Image Data," CEPR Discussion Papers 18507, C.E.P.R. Discussion Papers.
  • Handle: RePEc:cpr:ceprdp:18507
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    More about this item

    JEL classification:

    • C1 - Mathematical and Quantitative Methods - - Econometric and Statistical Methods and Methodology: General
    • C5 - Mathematical and Quantitative Methods - - Econometric Modeling
    • C81 - Mathematical and Quantitative Methods - - Data Collection and Data Estimation Methodology; Computer Programs - - - Methodology for Collecting, Estimating, and Organizing Microeconomic Data; Data Access

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