English

Enhancing Robustness of Control Barrier Function: A Reciprocal Resistance-based Approach

Systems and Control 2025-07-28 v1 Systems and Control

Abstract

In this note, a new reciprocal resistance-based control barrier function (RRCBF) is developed to enhance the robustness of control barrier functions for disturbed affine nonlinear systems, without requiring explicit knowledge of disturbance bounds. By integrating a reciprocal resistance-like term into the conventional zeroing barrier function framework, we formally establish the concept of the reciprocal resistance-based barrier function (RRBF), rigorously proving the forward invariance of its associated safe set and its robustness against bounded disturbances. The RRBF inherently generates a buffer zone near the boundary of the safe set, effectively dominating the influence of uncertainties and external disturbances. This foundational concept is extended to formulate RRCBFs, including their high-order variants. To alleviate conservatism in the presence of complex, time-varying disturbances, we further introduce a disturbance observer-based RRCBF (DO-RRCBF), which exploits disturbance estimates to enhance safety guarantees and recover nominal control performance. The effectiveness of the proposed framework is validated through two simulation studies: a second-order linear system illustrating forward invariance in the phase plane, and an adaptive cruise control scenario demonstrating robustness in systems with high relative degree.

Keywords

Cite

@article{arxiv.2507.18888,
  title  = {Enhancing Robustness of Control Barrier Function: A Reciprocal Resistance-based Approach},
  author = {Xinming Wang and Zongyi Guo and Jianguo Guo and Jun Yang and Yunda Yan},
  journal= {arXiv preprint arXiv:2507.18888},
  year   = {2025}
}

Comments

7 pages, 5 figures, No presented at any conference

R2 v1 2026-07-01T04:18:05.128Z