2022
DOI: 10.1007/s10710-022-09433-z
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Severe damage recovery in evolving soft robots through differentiable programming

Abstract: Biological systems are very robust to morphological damage, but artificial systems (robots) are currently not. In this paper we present a system based on neural cellular automata, in which locomoting robots are evolved and then given the ability to regenerate their morphology from damage through gradient-based training. Our approach thus combines the benefits of evolution to discover a wide range of different robot morphologies, with the efficiency of supervised training for robustness through differentiable u… Show more

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Cited by 5 publications
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