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Evolution of a five-link planar bipedal walking mechanism (arxiv.org)
1 point by auferstehung on Feb 21, 2008 | hide | past | pdf | discuss on HN

In plain words: Rather than hand-tuning a small nerve-like circuit that produces the rhythm for a walking robot, a computer search evolves its connections and timing inside a physics-accurate simulation. The best evolved circuit was also tested on a real five-link biped, and many different circuits succeeded in simulation.

Abstract · Evolution of central pattern generators for the control of a five-link bipedal walking mechanism

Central pattern generators (CPGs), with a basis is neurophysiological studies, are a type of neural network for the generation of rhythmic motion. While CPGs are being increasingly used in robot control, most applications are hand-tuned for a specific task and it is acknowledged in the field that generic methods and design principles for creating individual networks for a given task are lacking. This study presents an approach where the connectivity and oscillatory parameters of a CPG network are determined by an evolutionary algorithm with fitness evaluations in a realistic simulation with accurate physics. We apply this technique to a five-link planar walking mechanism to demonstrate its feasibility and performance. In addition, to see whether results from simulation can be acceptably transferred to real robot hardware, the best evolved CPG network is also tested on a real mechanism. Our results also confirm that the biologically inspired CPG model is well suited for legged locomotion, since a diverse manifestation of networks have been observed to succeed in fitness simulations during evolution.

Atilim Gunes Baydin
arXiv:0801.0830 · cs.NE, cs.RO · submitted Jan 6, 2008 · updated Mar 29, 2012
abstract · pdf · html · 11 pages, 9 figures; substantial revision of content, organization, and quantitative results

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