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Guaranteed-Safe MPPI Through Composite Control Barrier Functions for Efficient Sampling in Multi-Constrained Robotic Systems

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arxiv 2410.02154 v1 pith:FW34YQZR submitted 2024-10-03 eess.SY cs.SY

classification eess.SYcs.SY
keywords controlsafeconstraintsmppisafetyalgorithmbarriercomposite
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We present a new guaranteed-safe model predictive path integral (GS-MPPI) control algorithm that enhances sample efficiency in nonlinear systems with multiple safety constraints. The approach use a composite control barrier function (CBF) along with MPPI to ensure all sampled trajectories are provably safe. We first construct a single CBF constraint from multiple safety constraints with potentially differing relative degrees, using it to create a safe closed-form control law. This safe control is then integrated into the system dynamics, allowing MPPI to optimize over exclusively safe trajectories. The method not only improves computational efficiency but also addresses the myopic behavior often associated with CBFs by incorporating long-term performance considerations. We demonstrate the algorithm's effectiveness through simulations of a nonholonomic ground robot subject to position and speed constraints, showcasing safety and performance.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

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    astro-ph.HE 2025-08 unverdicted novelty 5.0 of 10

    X-ray and radio polarimetry of GX 13+1 support a disk plus boundary or spreading layer geometry, with tentative polarization swings between dip and non-dip states.

  2. Safe and Performant Controller Synthesis using Gradient-based Model Predictive Control and Control Barrier Functions

    eess.SY 2025-07 reject novelty 4.0 of 10

    A two-stage controller that uses L-BFGS gradient-based MPC for performance and a CBF-QP filter for hard safety constraints is demonstrated on simulated unicycle and planar quadrotor navigation.

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