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Friday May 23, 2025 9:00am - 11:00am EDT

Authors - Muhammad Al-Zafar Khan, Jamal Al-Karaki, Marwan Omar
Abstract - In this paper, we present a multi-agent reinforcement learning (MARL) framework for optimizing tissue repair processes using engineered biological agents. Our approach integrates: (1) Stochastic reaction-diffusion systems modeling molecular signaling, (2) Neural-like electrochemical communication with Hebbian plasticity, and (3) A biologically informed reward function combining chemical gradient tracking, neural synchronization, and robust penalties. A curriculum learning scheme guides the agent through progressively complex repair scenarios. In silico experiments demonstrate emergent repair strategies, including dynamic secretion control and spatial coordination.
Paper Presenter
avatar for Muhammad Al-Zafar Khan

Muhammad Al-Zafar Khan

United Arab Emirates
Friday May 23, 2025 9:00am - 11:00am EDT
Virtual Room D New York, USA

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