首页> 外文会议>2012 4th IEEE RAS amp; EMBS International Conference on Biomedical Robotics and Biomechatronics >Developing an ankle-foot muscular model using Bayesian estimation for the influence of an ankle foot orthosis on muscles
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Developing an ankle-foot muscular model using Bayesian estimation for the influence of an ankle foot orthosis on muscles

机译:使用贝叶斯估计建立踝足肌肉模型,以评估踝足矫形器对肌肉的影响

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The objective of this study is to develop an estimation model of foot-ankle muscular activity for designing an ankle-foot orthosis with a training function. We built a Bayesian network model [1] and chose three muscles to confirm its effectiveness. Such a model needs to include all factors affecting the gait, for example, speed reflex movements, joint angles and so forth. In an experiment, we examined the normal gait of a non-disabled subject. We measured the muscular activity of the lower foot muscles by electromyography, the joint angles by using statistical methods, and the sole pressure on each part of the sole. From this data, we obtained the causal relationship at every 10% level of these factors. Our model has three advantages. First, it can express the influences, which change throughout the gait, because we use 10% level nodes of each factor. Second, it can express the influences of factors, which are different for low and high muscular activity levels. Last, the model can compensate the missed estimations by estimating every 10% level muscle activity. In an evaluation of this model, we confirmed that this model can estimate all muscular activity level with an accuracy rate greater than 90%.
机译:这项研究的目的是开发一种脚踝肌肉活动的估计模型,以设计具有训练功能的踝足矫形器。我们建立了贝叶斯网络模型[1],并选择了三块肌肉来确认其有效性。这样的模型需要包括影响步态的所有因素,例如,速度反射运动,关节角度等。在一项实验中,我们检查了非残疾受试者的正常步态。我们通过肌电图测量了下脚肌肉的肌肉活动,通过使用统计方法测量了关节的角度,并测量了鞋底各个部位的鞋底压力。从这些数据中,我们获得了这些因素中每10%的因果关系。我们的模型具有三个优点。首先,它可以表达整个步态变化的影响,因为我们使用每个因素的10%水平节点。其次,它可以表达各种因素的影响,这些因素对于肌肉活动的高低不一。最后,该模型可以通过估计每10%的肌肉活动来补偿错过的估计。在对该模型的评估中,我们确认该模型可以估计所有肌肉活动水平,且准确率大于90%。

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