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Stochastic Artificial Potentials for Online Safe Navigation

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arxiv 1701.00033 v1 pith:YFJCTKXX submitted 2016-12-30 math.OC

classification math.OC
keywords functionconvexagentnavigationobstaclesassumptionsconditionsconsider
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Consider a convex set of which we remove an arbitrarily number of disjoints convex sets -- the obstacles -- and a convex function whose minimum is the agent's goal. We consider a local and stochastic approximation of the gradient of a Rimon-Koditschek navigation function where the attractive potential is the convex function that the agent is minimizing. In particular we show that if the estimate available to the agent is unbiased convergence to the desired destination while obstacle avoidance is guaranteed with probability one under the same geometrical conditions than in the deterministic case. Qualitatively these conditions are that the ratio of the maximum over the minimum eigenvalue of the Hessian of the objective function is not too large and that the obstacles are not too flat or too close to the desired destination. Moreover, we show that for biased estimates a similar result holds under some assumptions on the bias. These assumptions are motivated by the study of the estimate of the gradient of a Rimon-Koditschek navigation function for sensor models that fit circles or ellipses around the obstacles. Numerical examples explore the practical value of these theoretical results.

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Cited by 1 Pith paper

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

  1. Navigation of a Quadratic Potential with Ellipsoidal Obstacles

    math.OC 2019-08 reject novelty 6.0 of 10

    A Hessian-free correction to Rimon-Koditschek gradient dynamics guarantees convergence to the goal and obstacle avoidance for quadratic potentials with ellipsoidal obstacles of any eccentricity.

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