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A Sensor-Based Comprehensive Objective Assessment of Motor Symptoms in Cerebellar Ataxia

机译:基于传感器的小脑共济失调运动症状综合客观评估

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Human observer-based assessments of Cerebellar Ataxia (CA) are subjective and are often inadequate to track mild motor symptoms. This study examines the potential use of a comprehensive sensor-based approach for objective evaluation of CA in five domains (speech, upper limb, lower limb, gait and balance) through the instrumented versions of nine bedside neurological tests. A total of twenty-three participants diagnosed with CA to varying degrees and eleven healthy controls were recruited. Data was collected using wearable inertial sensors and Kinect camera. In our study, an optimal feature subset based on feature importance in the Random Forest classifier model demonstrated an impressive performance accuracy of 97% (F1 score = 95.2%) for CA-control discrimination. Our experimental findings also indicate that the Romberg test contributed most, followed by the peripheral tests, while the Gait test contributed least to the classification. Sensor-based approaches, therefore, have the potential to complement existing clinical assessment techniques, offering advantages in terms of consistency, objectivity and informed clinical decision-making.
机译:基于人类观察者的小脑共济失调(CA)评估是主观的,通常不足以追踪轻度运动症状。这项研究通过九种床旁神经学测试的仪器版本,研究了基于综合传感器的方法在五个领域(言语,上肢,下肢,步态和平衡)中对CA进行客观评估的潜在用途。总共招募了二十三名不同程度地被诊断出患有CA的参与者和十一名健康对照。使用可穿戴惯性传感器和Kinect相机收集数据。在我们的研究中,基于随机森林分类器模型中特征重要性的最佳特征子集证明了对CA控件的识别具有97%的出色性能准确性(F1分数= 95.2%)。我们的实验结果还表明,罗姆贝格测试贡献最大,其次是外围测试,而步态测试对分类的贡献最少。因此,基于传感器的方法具有补充现有临床评估技术的潜力,在一致性,客观性和明智的临床决策方面具有优势。

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