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arXiv (Cornell University)
Gradient-based Regularization for Action Smoothness in Robotic Control with Reinforcement Learning
July 2024 • Ickjai Lee, Hoang-Giang Cao, Cong-Tinh Dao, Yu‐Cheng Chen, I‐Chen Wu
Deep Reinforcement Learning (DRL) has achieved remarkable success, ranging from complex computer games to real-world applications, showing the potential for intelligent agents capable of learning in dynamic environments. However, its application in real-world scenarios presents challenges, including the jerky problem, in which jerky trajectories not only compromise system safety but also increase power consumption and shorten the service life of robotic and autonomous systems. To address jerky actions, a method ca…
Reinforcement Learning
Smoothness
Artificial Intelligence
Computer Science
Machine Learning
Mathematics
Engineering
Mathematical Analysis
Physics
Structural Engineering
Quantum Mechanics