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A-WEAR Bracelet for Detection of Hand Tremor and Bradykinesia in Parkinson’s Patients

机译:用于检测帕金森患者手势和Bradykinesia的A-Wear手镯

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摘要

Parkinson’s disease patients face numerous motor symptoms that eventually make their life different from those of normal healthy controls. Out of these motor symptoms, tremor and bradykinesia, are relatively prevalent in all stages of this disease. The assessment of these symptoms is usually performed by traditional methods where the accuracy of results is still an open question. This research proposed a solution for an objective assessment of tremor and bradykinesia in subjects with PD (10 older adults aged greater than 60 years with tremor and 10 older adults aged greater than 60 years with bradykinesia) and 20 healthy older adults aged greater than 60 years. Physical movements were recorded by means of an AWEAR bracelet developed using inertial sensors, i.e., 3D accelerometer and gyroscope. Participants performed upper extremities motor activities as adopted by neurologists during the clinical assessment based on Unified Parkinson’s Disease Rating Scale (UPDRS). For discriminating the patients from healthy controls, temporal and spectral features were extracted, out of which non-linear temporal and spectral features show greater difference. Both supervised and unsupervised machine learning classifiers provide good results. Out of 40 individuals, neural net clustering discriminated 34 individuals in correct classes, while the KNN approach discriminated 91.7% accurately. In a clinical environment, the doctor can use the device to comprehend the tremor and bradykinesia of patients quickly and with higher accuracy.
机译:帕金森病患者面临着许多电机症状,最终使他们的生活与正常健康对照的生活不同。出于这些疾病的所有阶段,震颤和布拉德韦斯症状,震颤和布拉德韦斯症状相对普遍。对这些症状的评估通常由传统方法进行,其中结果的准确性仍然是一个开放的问题。本研究提出了一种对PD的受试者进行震颤和Bradykinesia的客观评估的解决方案(10岁老年人患者,震颤的10岁以上的10名年龄较大的成人大于60岁)和20岁的健康老年人大于60岁。通过使用惯性传感器开发的安全手镯记录物理运动,即3D加速度计和陀螺仪。参与者在基于统一帕金森病评定规模(UPDRS)的临床评估期间,在临床评估期间进行了神经根学家所采用的上肢电机活动。为了鉴别来自健康对照的患者,提取时间和光谱特征,其中非线性时间和光谱特征显示出更大的差异。监督和无监督的机器学习分类器都提供了良好的效果。在40个个人中,神经净聚类在正确的课程中歧视34个个人,而KNN方法准确歧视91.7%。在临床环境中,医生可以利用该装置迅速地掌握患者的震颤和Bradykinesia。

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