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Control Barrier Function Synthesis for Nonlinear Systems with Dual Relative Degree
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Control barrier functions (CBFs) are a powerful tool for synthesizing safe control actions; however, constructing CBFs remains difficult for general nonlinear systems. In this work, we provide a constructive framework for synthesizing CBFs for systems with dual relative degree -- where different inputs influence the outputs at two different orders of differentiation; this is common in systems with orientation-based actuation, such as unicycles and quadrotors. In particular, we propose dual relative degree CBFs (DRD-CBFs) and show that these DRD-CBFs can be constructively synthesized and used to guarantee system safety. Our method constructs DRD-CBFs by leveraging the dual relative degree property -- combining a CBF for an integrator chain with a Lyapunov function certifying the tracking of safe inputs generated for this linear system. We apply these results to dual relative degree systems, both in simulation and experimentally on hardware using quadruped and quadrotor robotic platforms.
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Cited by 2 Pith papers
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Compatibility of Multiple Control Barrier Functions for Constrained Nonlinear Systems
For MIMO nonlinear systems with vector relative degree, box constraints on outputs yield mutually compatible control barrier function constraints, and the quadratic-programming safety filter is Lipschitz and closed-fo...
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Dynamic Safety in Complex Environments: Synthesizing Safety Filters with Poisson's Equation
Solving Poisson's equation on an occupancy map with a tunable negative forcing function yields a smooth safety function that can be used as a control barrier function for collision-free robot control.
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