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Features for detection of Parkinson's disease tremor from local field potentials of the subthalamic nucleus

机译:从丘脑底核的局部场电位检测帕金森氏病震颤的特征

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Deep Brain Stimulation (DBS) is a treatment routinely used to alleviate the symptoms of Parkinson's disease (PD). In this type of treatment, electrical pulses are applied through electrodes implanted into the basal ganglia of the patient. As the symptoms are not permanent in most patients, it is desirable to develop an on-demand stimulator, applying pulses only when onset of the symptoms is detected. This study evaluates a feature set created for the detection of tremor — a cardinal symptom of PD. The designed feature set was based on standard signal features and researched properties of the electrical signals recorded from subthalamic nucleus (STN) within the basal ganglia, which together included temporal, spectral, statistical, autocorrelation and fractal properties. The most characterized tremor related features were selected using statistical testing and backward algorithms then used for classification on unseen patient signals. The spectral features were among the most efficient at detecting tremor, notably spectral bands 3.5–5.5 Hz and 0–1 Hz proved to be highly significant. The classification results for determination of tremor achieved 94% sensitivity with specificity equaling one.
机译:脑深部刺激(DBS)是一种通常用于缓解帕金森氏病(PD)症状的治疗方法。在这种类型的治疗中,通过植入患者基底神经节中的电极施加电脉冲。由于症状在大多数患者中不是永久性的,因此需要开发一种按需刺激器,仅在检测到症状发作时才施加脉冲。这项研究评估了为检测震颤而创建的功能集,震颤是PD的主要症状。设计的功能集基于标准信号功能和基底神经节内丘脑下核(STN)记录的电信号的研究性质,这些性质包括时间,频谱,统计,自相关和分形性质。使用统计测试和向后算法选择最具有特征性的震颤相关特征,然后将其用于对看不见的患者信号进行分类。光谱特征是检测震颤最有效的方法之一,尤其是3.5–5.5 Hz和0–1 Hz的光谱带被证明是非常重要的。用于确定震颤的分类结果达到94%的灵敏度,特异性等于1。

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