TY - GEN
T1 - Accelerating Reinforcement Learning for Wind Farm Control via Expert Demonstrations
AU - Nilsen, Marcus Binder
AU - Quick, Julian
AU - Göçmen, Tuhfe
AU - Dimitrov, Nikolay
AU - Réthoré, Pierre-Elouan
PY - 2026
Y1 - 2026
N2 - Reinforcement learning (RL) offers a promising approach for adaptive wind farm flow control, yet its practical deployment is hindered by slow training convergence and poor initial performance, factors that could translate to years of reduced power output if an untrained agent were deployed directly. This work investigates whether domain knowledge from steady-state wake models can accelerate RL training and improve initial controller performance. We propose a pretraining methodology in which expert demonstrations are generated by deploying a PyWake-based steady-state optimizer within a dynamic wake simulation (WindGym), then used to initialize both the actor and critic networks of a Soft Actor–Critic agent via behavior cloning. Experiments on a 2×2 wind farm show that pretraining eliminates the costly initial learning phase: while an untrained agent underperforms the greedy zero-yaw baseline by approximately 12%, pretraining raises initial performance to near-baseline levels. During online fine-tuning, all configurations converge within 250,000 environment steps to achieve similar performance, ultimately exceeding that of a lookup-table controller, which reaches approximately 7% power gain after 500,000 steps.
AB - Reinforcement learning (RL) offers a promising approach for adaptive wind farm flow control, yet its practical deployment is hindered by slow training convergence and poor initial performance, factors that could translate to years of reduced power output if an untrained agent were deployed directly. This work investigates whether domain knowledge from steady-state wake models can accelerate RL training and improve initial controller performance. We propose a pretraining methodology in which expert demonstrations are generated by deploying a PyWake-based steady-state optimizer within a dynamic wake simulation (WindGym), then used to initialize both the actor and critic networks of a Soft Actor–Critic agent via behavior cloning. Experiments on a 2×2 wind farm show that pretraining eliminates the costly initial learning phase: while an untrained agent underperforms the greedy zero-yaw baseline by approximately 12%, pretraining raises initial performance to near-baseline levels. During online fine-tuning, all configurations converge within 250,000 environment steps to achieve similar performance, ultimately exceeding that of a lookup-table controller, which reaches approximately 7% power gain after 500,000 steps.
U2 - 10.1088/1742-6596/3224/3/032016
DO - 10.1088/1742-6596/3224/3/032016
M3 - Article in proceedings
VL - 3224
T3 - Journal of Physics: Conference Series
BT - Proceedings of The Science of Making Torque from Wind (TORQUE 2026)
PB - IOP Publishing
T2 - 2026 The Science of making Torque from wind
Y2 - 3 June 2026 through 5 June 2026
ER -