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Muhammed O. Sayin

3 accepted papers

2024

Team-Fictitious Play for Reaching Team-Nash Equilibrium in Multi-team Games

NeurIPS 2024poster

Multi-team games, prevalent in robotics and resource management, involve team members striving for a joint best response against other teams. Team-Nash equilibrium (TNE) predicts the outcomes of such coordinated interactions. However, can teams of self-interested agents reach TNE? We introduce Team-…

Cited by 1SourcePDFScholar
2021

Decentralized Q-learning in Zero-sum Markov Games

NeurIPS 2021poster

We study multi-agent reinforcement learning (MARL) in infinite-horizon discounted zero-sum Markov games. We focus on the practical but challenging setting of decentralized MARL, where agents make decisions without coordination by a centralized controller, but only based on their own payoffs and lo…

Cited by 121SourcePDFScholar
2015

Twice-universal piecewise linear regression via infinite depth context trees

ICASSP 2015accepted

We investigate the problem of sequential piecewise linear regression from a competitive framework. For an arbitrary and unknown data length n, we first introduce a method to partition the regressor space. Particularly, we present a recursive method that divides the regressor space into O(n) disjoint…

Cited by 0SourceScholar