多种价格的需求分析

V. Chernozhukov, J. Hausman, Whitney Newey
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引用次数: 17

摘要

从一开始,需求估计就面临着“多价格”的问题。本文给出了当横截面或面板数据中存在多个价格时的平均需求估计和确切消费者剩余的相关边界。对于横截面数据,我们提供了一个消费者剩余边界的无偏见机器学习器,允许一般异质性并解决需求的“零问题”。对于面板数据,我们提供了偏差校正,平均系数和消费者剩余界限的脊正则化估计。在扫描仪数据中,我们发现面板弹性小于横截面,苏打水价格上涨是回归的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Demand Analysis with Many Prices
From its inception, demand estimation has faced the problem of "many prices." This paper provides estimators of average demand and associated bounds on exact consumer surplus when there are many prices in cross-section or panel data. For cross-section data we provide a debiased machine learner of consumer surplus bounds that allows for general heterogeneity and solves the "zeros problem" of demand. For panel data we provide bias corrected, ridge regularized estimators of average coefficients and consumer surplus bounds. In scanner data we find smaller panel elasticities than cross-section and that soda price increases are regressive.
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