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February 2, 2026Symmetry0 citationsOpen Access

Symmetry Breaking in Car-Following Dynamics: Suppressing Traffic Oscillations via Asymmetric Dynamic Delays

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SJShuaiyang JiaoLXLiyuan XueALAizeng Li

Key Points

  • The aim is to improve traffic modeling by addressing symmetry in driver response during acceleration and deceleration.
  • Developed a Delay Adaptive Car-following Model with an asymmetric dynamic delay function
  • Calibrated the model using trajectory data from the Next Generation Simulation program
  • Conducted linear stability analysis and numerical simulations to test model effectiveness
  • The model outperformed the Full Velocity Difference Model in accuracy
  • Demonstrated the ability to reproduce realistic acceleration and deceleration behaviors
  • Revealed that asymmetric dynamic delays serve as self-adaptive dampers, preventing stop-and-go waves

Abstract

Accurately describing driver response mechanisms is fundamental to microscopic traffic modeling. Traditional car-following models typically assume a fixed reaction time, implying a temporal symmetry where drivers exhibit identical response characteristics during acceleration and deceleration. To address this limitation, this paper proposes a Delay Adaptive Car-following Model that incorporates an asymmetric dynamic delay function to capture the symmetry breaking in driving behavior. Calibrated using empirical trajectory data from the Next Generation Simulation program, the proposed model demonstrates superior accuracy over the conventional Full Velocity Difference Model by effectively reproducing the realistic phenomenon of sluggish acceleration and agile deceleration. Linear stability analysis and numerical simulations reveal that, unlike fixed symmetric delays which often induce instability, the asymmetric dynamic delay acts as a self-adaptive damper. This mechanism suppresses the amplification of disturbances and prevents the formation of stop-and-go waves. The results confirm that incorporating temporal symmetry breaking into delay mechanisms significantly enhances the robustness of traffic flow against oscillations.

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Cite This Study

Jiao et al. (2026) studied this question.

synapsesocial.com/papers/6980ff08c1c9540dea811aa8https://doi.org/10.3390/sym18020256
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