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An Inverse-Optimization-Based Auction Mechanism to Support a Multiattribute RFQ Process

机译:基于逆优化的拍卖机制可支持多属性询价流程

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摘要

We consider a manufacturer who uses a reverse, or procurement, auction to determine which supplier will be awarded a contract. Each bid consists of a price and a set of nonprice attributes (e.g., quality, lead time). The manufacturer is assumed to know the parametric form of the suppliers' cost functions (in terms of the nonprice attributes), but has no prior information on the parameter values. We construct a multiround open-ascending auction mechanism, where the manufacturer announces a slightly different scoring rule (i.e., a function that ranks the bids in terms of the price and nonprice attributes) in each round. Via inverse optimization, the manufacturer uses the bids from the first several rounds to learn the suppliers' cost functions, and then in the final round chooses a scoring rule that attempts to maximize his own utility. Under the assumption that suppliers submit their myopic best-response bids in the last round, and do not distort their bids in the earlier rounds (i.e., they choose their minimum-cost bid to achieve any given score), our mechanism, indeed, maximizes the manufacturer's utility within the open-ascending format. We also discuss several enhancements that improve the robustness of our mechanism with respect to the model's informational and behavioral assumptions.
机译:我们考虑使用反向拍卖或采购拍卖来确定将授予哪个供应商合同的制造商。每个出价都包含一个价格和一组非价格属性(例如质量,提前期)。假定制造商知道供应商成本函数的参数形式(就非价格属性而言),但没有有关参数值的先验信息。我们构建了一个多轮开放式拍卖机制,制造商在每一轮中宣布了一个略有不同的评分规则(即,根据价格和非价格属性对出价进行排名的功能)。通过逆向优化,制造商使用前几轮的投标来了解供应商的成本函数,然后在最后一轮中选择一个计分规则,以尝试最大化自己的效用。假设供应商在上一轮提交近视最佳响应出价,并且在前几轮不扭曲其出价(即,他们选择最低成本的出价以达到任何给定的分数),我们的机制的确会最大化开放式升序格式的制造商实用程序。我们还将讨论关于模型的信息和行为假设的一些改进,这些改进可以提高我们的机制的鲁棒性。

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