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Significance of Low-level Controller for String Stability under Adaptive Cruise Control

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arxiv 2104.07726 v2 pith:6A4FW6QU submitted 2021-04-15 eess.SY cs.SY

classification eess.SYcs.SY
keywords controllerbrakecontrollow-levelslowstringadaptivecommercial
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Current commercial adaptive cruise control (ACC) systems consist of an upper-level planner controller that decides the optimal trajectory that should be followed, and a low-level controller in charge of sending the gas/brake signals to the mechanical system to actually move the vehicle. We find that the low-level controller has a significant impact on the string stability (SS) even if the planner is string stable: (i) a slow controller deteriorates the SS, (ii) slow controllers are common as they arise from insufficient control gains, from a "weak" gas/brake system or both, and (iii) the integral term in a slow controller causes undesired overshooting which affects the SS. Accordingly, we suggest tuning up the proportional/feedforward gain and ensuring the gas/brake is not "weak". The study results are validated both numerically and empirically with data from commercial cars.

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Cited by 1 Pith paper

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  1. Traffic Wave Properties for Automated Vehicles During Traffic Oscillations via Analytical Approximations

    eess.SY 2024-11 conditional novelty 6.0 of 10

    Automated-vehicle traffic wave speed is shown to be time- and position-dependent, determined by the AV control transfer function's gain and phase under oscillatory disturbances.

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