English

Zero-Sum Differential Games on the Wasserstein Space

Optimization and Control 2020-05-26 v2

Abstract

We consider two-player zero-sum differential games (ZSDGs), where the state process (dynamical system) depends on the random initial condition and the state process's distribution, and the objective functional includes the state process's distribution and the random target variable. Unlike ZSDGs studied in the existing literature, the ZSDG of this paper introduces a new technical challenge, since the corresponding (lower and upper) value functions are defined on P2\mathcal{P}_2 (the set of probability measures with finite second moments) or L2\mathcal{L}_2 (the set of random variables with finite second moments), both of which are infinite-dimensional spaces. We show that the (lower and upper) value functions on P2\mathcal{P}_2 and L2\mathcal{L}_2 are equivalent (law invariant) and continuous, satisfying dynamic programming principles. We use the notion of derivative of a function of probability measures in P2\mathcal{P}_2 and its lifted version in L2\mathcal{L}_2 to show that the (lower and upper) value functions are unique viscosity solutions to the associated (lower and upper) Hamilton-Jacobi-Isaacs equations that are (infinite-dimensional) first-order PDEs on P2\mathcal{P}_2 and L2\mathcal{L}_2, where the uniqueness is obtained via the comparison principle. Under the Isaacs condition, we show that the ZSDG has a value.

Keywords

Cite

@article{arxiv.1912.06084,
  title  = {Zero-Sum Differential Games on the Wasserstein Space},
  author = {Jun Moon and Tamer Basar},
  journal= {arXiv preprint arXiv:1912.06084},
  year   = {2020}
}

Comments

32 pages, 1 figure

R2 v1 2026-06-23T12:44:21.388Z