ROSYMar 7

Is Your Safe Controller Actually Safe? A Critical Review of CBF Tautologies and Hidden Assumptions

arXiv:2603.06954v11 citationsHas Code
Predicted impact top 33% in RO · last 90 daysOriginality Incremental advance
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This tutorial addresses a critical gap for roboticists and control engineers in understanding when CBF formulations provide valid safety guarantees and when they fail due to common misuses, particularly for systems with input constraints.

This paper critically reviews the practical application of Control Barrier Functions (CBFs) in robotic safety, identifying a gap between theoretical assumptions and constructive realization in systems with input constraints. It shows that many purported demonstrations of safe robot policies are limited to passively safe systems where safety is inherited from physics, and provides guidelines for constructing realizable safety arguments for systems without such passive safety.

This tutorial provides a critical review of the practical application of Control Barrier Functions (CBFs) in robotic safety. While the theoretical foundations of CBFs are well-established, I identify a recurring gap between the mathematical assumption of a safe controller's existence and its constructive realization in systems with input constraints. I highlight the distinction between candidate and valid CBFs by analyzing the interplay of system dynamics, actuation limits, and class-K functions. I further show that some purported demonstrations of safe robot policies or controllers are limited to passively safe systems, such as single integrators or kinematic manipulators, where safety is already inherited from the underlying physics and even naive geometric hard constraints suffice to prevent collisions. By revisiting simple low-dimensional examples, I show when CBF formulations provide valid safety guarantees and when they fail due to common misuses. I then provide practical guidelines for constructing realizable safety arguments for systems without such passive safety. The goal of this tutorial is to bridge the gap between theoretical guarantees and actual implementation, supported by an open-source interactive web demonstration that visualizes these concepts intuitively.

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