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Path Planning and Tracking for Vehicle Collision Avoidance Based on Model Predictive Control With Multiconstraints

IEEE Transactions on Vehicular Technology · 2016 · Vol. 66(2) · pp. 952–964
Jie JiAmir KhajepourWael William MelekYanjun Huang

Abstract

A path planning and tracking framework is presented to maintain a collision-free path for autonomous vehicles. For path-planning approaches, a 3-D virtual dangerous potential field is constructed as a superposition of trigonometric functions of the road and the exponential function of obstacles, which can generate a desired trajectory for collision avoidance when a vehicle collision with obstacles is likely to happen. Next, to track the planned trajectory for collision avoidance maneuvers, the path-tracking controller formulated the tracking task as a multiconstrained model predictive control (MMPC) problem and calculated the front steering angle to prevent the vehicle from colliding with a moving obstacle vehicle. Simulink and CarSim simulations are conducted in the case where moving obstacles exist. The simulation results show that the proposed path-planning approach is effective for many driving scenarios, and the MMPC-based path-tracking controller provides dynamic tracking performance and maintains good maneuverability.

Robotic Path Planning AlgorithmsVehicle Dynamics and Control SystemsAutonomous Vehicle Technology and SafetyCollision avoidanceCarSimTrajectoryMotion planningControl theory (sociology)Obstacle avoidanceModel predictive controlController (irrigation)CollisionPath (computing)

Funding

  • National Natural Science Foundation of China
  • Natural Sciences and Engineering Research Council of Canada
  • Fundamental Research Funds for the Central Universities
Citations
997
FWCI
28.30
field-weighted impact
References
38
Percentile
100%
vs. same field & year
Citations per year
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