Iterative Optimization
Iterative optimization focuses on refining solutions through repeated cycles of improvement, aiming to find optimal or near-optimal solutions for complex problems. Current research emphasizes diverse approaches, including linear programming, deep learning models for approximating inverse system behavior, and reinforcement learning for model refinement and algorithm design, often applied within frameworks like model predictive control. These advancements are impacting various fields, from engineering design optimization and robotics to signal processing and machine learning algorithm development, by improving efficiency, accuracy, and interpretability.
Papers
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