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Examination of a muscular activity estimation model using a Bayesian network for the influence of an ankle foot orthosis

机译:用贝叶斯网络对踝足矫形器影响的肌肉活动估算模型检查

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In the present paper, we examine the appropriateness of a new model to examine the activity of the foot in gait. We developed an estimation model for foot-ankle muscular activity in the design of an ankle-foot orthosis by means of a statistical method. We chose three muscles for measuring muscular activity and built a Bayesian network model [1] to confirm the appropriateness of the estimation model. We experimentally examined the normal gait of a non-disabled subject. We measured the muscular activity of the lower foot muscles using electromyography, the joint angles, and the pressure on each part of the sole. From these data, we obtained the causal relationship at every 10% level for these factors and built models for the stance phase, control term, and propulsive term. Our model has three advantages. First, it can express the influences that change during gait because we use 10% level nodes for each factor. Second, it can express the influences of factors that differ for low and high muscular-activity levels. Third, we created divided models that are able to reflect the actual features of gait. In evaluating the new model, we confirmed it is able to estimate all muscular activity level with an accuracy of over 90%.
机译:在本文中,我们研究了一种新模型的适当性,以检查步态脚的活动。通过统计方法,我们开发了脚踝肌肉活动的估计模型。我们选择了三个肌肉来测量肌肉活动,并建立了贝叶斯网络模型[1]以确认估计模型的适当性。我们通过实验检查了非残疾人主题的正常步态。我们使用肌电图,关节角度和鞋底各部分的压力测量了下脚肌的肌肉活性。从这些数据来看,我们在每10%的情况下获得了这些因素的因果关系,并为姿势阶段,控制术语和推进术语建造了模型。我们的型号有三个优点。首先,它可以表达在步态期间改变的影响,因为我们为每个因素使用10%的级别节点。其次,它可以表达对低肌肉活性水平不同的因素的影响。第三,我们创建了能够反映步态实际功能的分割模型。在评估新模型时,我们确认它能够以超过90%的准确性估计所有肌肉活动水平。

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