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Dynamics-Based Reactive Synthesis and Automated Revisions for High-Level Robot Control
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The aim of this work is to address issues where formal specifications cannot be realized on a given dynamical system subjected to a changing environment. Such failures occur whenever the dynamics of the system restrict the robot in such a way that the environment may prevent the robot from progressing safely to its goals. We provide a framework that automatically synthesizes revisions to such specifications that restrict the assumed behaviors of the environment and the behaviors of the system. We provide a means for explaining such modifications to the user in a concise, easy-to-understand manner. Integral to the framework is a new algorithm for synthesizing controllers for reactive specifications that include a discrete representation of the robot's dynamics. The new approach is demonstrated with a complex task implemented using a unicycle model.
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Cited by 1 Pith paper
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Physically-Feasible Reactive Synthesis for Terrain-Adaptive Locomotion
A quadruped locomotion planner combines reactive synthesis with mixed-integer convex optimization to generate and repair terrain-adaptive gaits, with hardware demonstrations on stepping stones and rebar.
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