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Bayesian Optimization-based Combinatorial Assignment

About

We study the combinatorial assignment domain, which includes combinatorial auctions and course allocation. The main challenge in this domain is that the bundle space grows exponentially in the number of items. To address this, several papers have recently proposed machine learning-based preference elicitation algorithms that aim to elicit only the most important information from agents. However, the main shortcoming of this prior work is that it does not model a mechanism's uncertainty over values for not yet elicited bundles. In this paper, we address this shortcoming by presenting a Bayesian optimization-based combinatorial assignment (BOCA) mechanism. Our key technical contribution is to integrate a method for capturing model uncertainty into an iterative combinatorial auction mechanism. Concretely, we design a new method for estimating an upper uncertainty bound that can be used to define an acquisition function to determine the next query to the agents. This enables the mechanism to properly explore (and not just exploit) the bundle space during its preference elicitation phase. We run computational experiments in several spectrum auction domains to evaluate BOCA's performance. Our results show that BOCA achieves higher allocative efficiency than state-of-the-art approaches.

Jakob Weissteiner, Jakob Heiss, Julien Siems, Sven Seuken• 2022

Related benchmarks

TaskDatasetResultRank
Combinatorial Auction EfficiencyLSVM (Local Spectrum Value Model)
Efficiency Loss0.39
17
Combinatorial Auction EfficiencySRVM (Satellite Remote Value Model)
Efficiency Loss0.06
17
Combinatorial AuctionMRVM
Efficiency Loss7.77
12
Combinatorial Auction EfficiencyMRVM (Multi-Region Value Model)
Efficiency Loss (%)7.77
5
Combinatorial AuctionLSVM domain (test)
Efficiency Loss39
2
Combinatorial AuctionSRVM domain (test)
Efficiency Loss6
2
Combinatorial AuctionMRVM domain (test)
Efficiency Loss7.77
2
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