Zero-Order Control Barrier Functions for Sampled-Data Systems with State and Input Dependent Safety Constraints

November 26, 2024 ยท Declared Dead ยท ๐Ÿ› American Control Conference

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Authors Xiao Tan, Ersin Das, Aaron D. Ames, Joel W. Burdick arXiv ID 2411.17079 Category eess.SY: Systems & Control (EE) Cross-listed cs.RO Citations 10 Venue American Control Conference Last Checked 2 months ago
Abstract
We propose a novel zero-order control barrier function (ZOCBF) for sampled-data systems to ensure system safety. Our formulation generalizes conventional control barrier functions and straightforwardly handles safety constraints with high-relative degrees or those that explicitly depend on both system states and inputs. The proposed ZOCBF condition does not require any differentiation operation. Instead, it involves computing the difference of the ZOCBF values at two consecutive sampling instants. We propose three numerical approaches to enforce the ZOCBF condition, tailored to different problem settings and available computational resources. We demonstrate the effectiveness of our approach through a collision avoidance example and a rollover prevention example on uneven terrains.
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