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Speed Control in the Presence of Road Obstacles: A Comparison of Model Predictive Control and Reinforcement Learning

  • P. Mandl,
  • F. Jaumann,
  • M. Unterreiner,
  • T. Gräber,
  • F. Klinger,
  • J. Edelmann,
  • M. Plöchl

摘要

The paper compares two optimal control methods — Reinforcement Learning and Model Predictive Control — for adaptive speed control in the presence of road obstacles to enhance ride comfort. Both methods use a model for training or prediction and a reward or cost function to achieve a desired control objective. Using the same quarter-car model and objective function for both methods, differences in planned speed profiles, optimality of the control objective, and differences in computational time are analysed through simulations over a series of cosine-shaped road bumps.