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Predicting quadriceps muscle activity during gait with an automatic rule determination method

机译:用自动规则确定方法预测步态中的股四头肌活动

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It has been suggested that control using a skill-based expert system can be applicable to gait restoration. Rule-based systems have several advantages for this application: they generate a fast response (they are not computationally intensive) and they are easy to comprehend and implement. A major problem with using such systems is the inability of users to determine its rules. In this study, an automatic method for obtaining the production rules from a set of examples is described. The rule base was automatically induced from a model which used external sensor signals as inputs and electromyogram (EMG) patterns as outputs. The method is based on the minimization of entropy. A production rule estimated the muscle activity pattern using the sensor information. The algorithm was tested using data recorded from six able-bodied individuals during ground level walking, with and without ankle-foot orthoses. The data showed that gait variability will increase in able-bodied subjects when the motion of ankle joints is restricted, thus, providing a good test for generalization. The experimental results illustrate performance of the production rule that estimates quadriceps muscle group activity pattern for ground level walking in able-bodied subjects.
机译:已经提出使用基于技能的专家系统进行的控制可以适用于步态恢复。基于规则的系统对此应用程序具有几个优点:它们生成快速响应(它们不占用大量计算资源),并且易于理解和实现。使用此类系统的主要问题是用户无法确定其规则。在这项研究中,描述了一种从一组示例中获取生产规则的自动方法。规则库是从一个模型自动得出的,该模型使用外部传感器信号作为输入,并使用肌电图(EMG)模式作为输出。该方法基于熵的最小化。生产规则使用传感器信息估算肌肉活动模式。使用从六个健壮的个体在有或没有踝足矫形器的地面行走过程中记录的数据对算法进行了测试。数据显示,当脚踝关节的运动受到限制时,健壮受试者的步态变异性将增加,从而为泛化提供了良好的测试。实验结果说明了生产规则的执行情况,该规则估计了健壮受试者在地面行走时的股四头肌肌肉群活动模式。

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