Deep Learning Based Model Identification System Exploits the Modular Structure of a Bio-Inspired Posture Control Model for Humans and Humanoids

Vittorio Lippi
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Abstract

This work presents a system identification procedure based on Convolutional Neural Networks (CNN) for human posture control using the DEC (Disturbance Estimation and Compensation) parametric model. The modular structure of the proposed control model inspired the design of a modular identification procedure, in the sense that the same neural network is used to identify the parameters of the modules controlling different degrees of freedom. In this way the presented examples of body sway induced by external stimuli provide several training samples at once
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基于深度学习的模型识别系统利用仿生人体和类人姿态控制模型的模块化结构
本文提出了一种基于卷积神经网络(CNN)的系统识别方法,用于使用DEC(扰动估计和补偿)参数模型进行人体姿态控制。所提出的控制模型的模块化结构启发了模块化识别过程的设计,即使用相同的神经网络来识别控制不同自由度的模块的参数。通过这种方式,所提出的由外部刺激引起的身体摇摆的例子同时提供了几个训练样本
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