The Shapley Value in Machine Learning

Author:

Rozemberczki Benedek1,Watson Lauren2,Bayer Péter3,Yang Hao-Tsung2,Kiss Olivér4,Nilsson Sebastian1,Sarkar Rik2

Affiliation:

1. AstraZeneca

2. The University of Edinburgh

3. Toulouse School of Economics & Institute for Advanced Study

4. Central European University

Abstract

Over the last few years, the Shapley value, a solution concept from cooperative game theory, has found numerous applications in machine learning. In this paper, we first discuss fundamental concepts of cooperative game theory and axiomatic properties of the Shapley value. Then we give an overview of the most important applications of the Shapley value in machine learning: feature selection, explainability, multi-agent reinforcement learning, ensemble pruning, and data valuation. We examine the most crucial limitations of the Shapley value and point out directions for future research.

Publisher

International Joint Conferences on Artificial Intelligence Organization

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