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Tejas Kotwal

1 accepted papers

2026

From Ticks to Flows: Dynamics of Neural Reinforcement Learning in Continuous Environments

ICLR 2026poster

We present a novel theoretical framework for deep reinforcement learning (RL) in continuous environments by modeling the problem as a continuous-time stochastic process, drawing on insights from stochastic control. Building on previous work, we introduce a viable model of actor–critic algorithm that…

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