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Non-Conservative Obstacle Avoidance for Multi-Body Systems Leveraging Convex Hulls and Predicted Closest Points

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arxiv 2410.12659 v1 pith:E2AJZ35J submitted 2024-10-16 cs.RO

Non-Conservative Obstacle Avoidance for Multi-Body Systems Leveraging Convex Hulls and Predicted Closest Points

classification cs.RO
keywords closestdistanceavoidancecollisioncontrollerconvexhullsleveraging
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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This paper introduces a novel approach that integrates future closest point predictions into the distance constraints of a collision avoidance controller, leveraging convex hulls with closest point distance calculations. By addressing abrupt shifts in closest points, this method effectively reduces collision risks and enhances controller performance. Applied to an Image Guided Therapy robot and validated through simulations and user experiments, the framework demonstrates improved distance prediction accuracy, smoother trajectories, and safer navigation near obstacles.

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