A Quadrupedal Locomotion Central Pattern Generator Based on Oscillatory Building Block Networks

Zhijun Yang, Qingbao Zhu
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引用次数: 3

Abstract

This work presents the mimicking of the main rhythmic gait patterns of a quadrupedal animal as an illustration of a novel approach to the prediction and generation of coupled neural oscillation. Based on Scheduling by Multiple Edge Reversal (SMER), a simple though powerful distributed algorithm, it is shown how oscillatory building blocks (OBBs) can be created for the generation of complex rhythmic patterns and implemented as asymmetric Hopfield neural networks. The network is able to reproduce the different firing rates observed among pairs of biological motor neurons working during different gait patterns.
基于振荡构建块网络的四足运动中心模式发生器
这项工作提出了模仿四足动物的主要节律步态模式,作为一种预测和产生耦合神经振荡的新方法的例证。基于多边缘反转调度(SMER),一种简单而强大的分布式算法,展示了如何创建振荡构建块(OBBs)来生成复杂的节奏模式,并实现为非对称Hopfield神经网络。该网络能够再现在不同步态模式下工作的成对生物运动神经元之间观察到的不同放电率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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