Minimax-Optimal Semiparametric Contextual Dynamic Pricing with Multimodal Revenue 文章

ArXiv CS.AI2026-08-05PAPERen作者: Xueping Gong, Zhuoluo Zhang, Zhaowei Miao, Jiheng Zhang

详细信息

来源站点
ArXiv CS.AI
作者
Xueping Gong, Zhuoluo Zhang, Zhaowei Miao, Jiheng Zhang
文章类型
PAPER
语言
en
发布日期
2026-08-05

摘要

arXiv:2608.03142v1 Announce Type: cross Abstract: We study contextual dynamic pricing with arbitrary covariate sequences and bounded, possibly nonbinary purchase quantities. Demand follows a semiparametric surplus-index model with an unknown linear valuation parameter and an unknown H\"older-smooth response. We impose neither concavity nor strong unimodality on revenue and allow nonunique optimal prices. We develop a pilot-corrected layered decision-partitioning policy that combines directional pilot estimation, local polynomial learning, predictable data assignment, and global action elimination. Pilot correction removes the first-order effect of valuation-parameter error, while permanent labels enable concentration under adaptive sampling. The policy attains the minimax smoothness-dependent horizon rate up to logarithmic factors; a matching lower bound already holds for a constant-context binary-demand subclass.

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