Chasing Demand: Learning and Earning in a Changing Environment

IF 0.1 4区 工程技术 Q4 ENGINEERING, MANUFACTURING
N. B. Keskin, A. Zeevi
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引用次数: 107

Abstract

We consider a dynamic pricing problem in which a seller faces an unknown demand model that can change over time. The amount of change over a time horizon of T periods is measured using a variation metric that allows for a broad spectrum of temporal behavior. Given a finite variation “budget,” we first derive a lower bound on the expected performance gap between any pricing policy and a clairvoyant who knows a priori the temporal evolution of the underlying demand model, and then we design families of near-optimal pricing policies, the revenue performance of which asymptotically matches said lower bound. We also show that the seller can achieve a substantially better revenue performance in demand environments that change in “bursts” than in demand environments that change “smoothly,” among other things quantifying the net effect of the “volatility” in the demand environment on the seller’s revenue performance.
追逐需求:在变化的环境中学习和赚钱
我们考虑一个动态定价问题,其中卖方面临一个未知的需求模型,该模型会随着时间的推移而变化。在T周期的时间范围内的变化量是使用允许广泛的时间行为谱的变化度量来测量的。给定一个有限变化的“预算”,我们首先推导出任何定价政策和先验地知道潜在需求模型的时间演变的千里眼之间预期绩效差距的下界,然后我们设计了接近最优定价政策的家族,其收入绩效渐近地与该下界相匹配。我们还表明,与“平稳”变化的需求环境相比,在“突发”变化的需求环境中,卖方可以实现更好的收入绩效,其中包括量化需求环境中“波动性”对卖方收入绩效的净影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Manufacturing Engineering
Manufacturing Engineering 工程技术-工程:制造
自引率
0.00%
发文量
0
审稿时长
6-12 weeks
期刊介绍: Information not localized
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