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conference paper

Data-Driven Behaviour Estimation in Parametric Games

Maddux, Anna Maria  
•
Pagan, Nicolo
•
Belgioioso, Giuseppe
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January 1, 2023
Ifac Papersonline
22nd World Congress of the International Federation of Automatic Control (IFAC)

A central question in multi-agent strategic games deals with learning the underlying utilities driving the agents' behaviour. Motivated by the increasing availability of large data-sets, we develop an unifying data-driven technique to estimate agents' utility functions from their observed behaviour, irrespective of whether the observations correspond to equilibrium configurations or to temporal sequences of action profiles. Under standard assumptions on the parametrization of the utilities, the proposed inference method is computationally efficient and finds all the parameters that rationalize the observed behaviour best. We numerically validate our theoretical findings on market share estimation problem under advertising competition, using historical data from the Coca-Cola Company and Pepsi Inc. duopoly.|Copyright (c) 2023 The Authors.

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Type
conference paper
DOI
10.1016/j.ifacol.2023.10.220
Web of Science ID

WOS:001122557300493

Author(s)
Maddux, Anna Maria  
•
Pagan, Nicolo
•
Belgioioso, Giuseppe
•
Doerfler, Florian
Date Issued

2023-01-01

Publisher

Elsevier

Publisher place

Amsterdam

Published in
Ifac Papersonline
Volume

56

Issue

2

Start page

9330

End page

9335

Subjects

Technology

•

Game Theory

•

Multi-Agent Systems

•

Data-Driven Decision Making

Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SYCAMORE  
Event nameEvent placeEvent date
22nd World Congress of the International Federation of Automatic Control (IFAC)

Yokohama, JAPAN

JUL 09-14, 2023

FunderGrant Number

SNSF under the NCCR Automation grant

180545

ETHZ

Available on Infoscience
April 17, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/207134
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