
About
Anish Diwan is a Ph.D. student at the Intelligent Autonomous Systems Group of TU Darmstadt. His research focuses on
- Reinforcement Learning
- Imitation Learning
- Score-Based Generative Models
His work on Noise-conditioned Energy-based Annealed Rewards (NEAR) was published at ICLR 2025, introducing a novel framework for imitation learning from observation data.
Current research trends include
- Integration of score-based generative models with policy learning
- Spatial reward composition techniques
- Partial observability handling via energy functions
He utilizes Isaac Gym for GPU-accelerated robotics simulations and has contributed to open-source repositories implementing NEAR framework.
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