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MATHEMATICAL METHODS OF SIGNAL ANALYSIS APPLIED IN MEDICAL DIAGNOSTIC

机译:医学诊断中应用信号分析的数学方法

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Digital signal processing, such as filtering, information extraction, and fusion of various results, is currently an integral part of advanced medical therapies. It is especially important in neurosurgery during deep-brain stimulation procedures. In such procedures, the surgical target is accessed using special electrodes while not being directly visible. This requires very precise identification of brain structures in 3D space throughout the surgery. In the case of deep-brain stimulation surgery for Parkinson's disease (PD), the target area-the subthalamic nucleus (STN)-is located deep within the brain. It is also very small (just a few millimetres across), which makes this procedure even more difficult. For this reason, various signals are acquired, filtered, and finally fused, to provide the neurosurgeon with the exact location of the target. These signals come from preoperative medical imaging (such as MRI and CT), and from recordings of brain activity carried out during surgery using special brain-implanted electrodes. Using the method described in this paper, it is possible to construct a decision-support system that, during surgery, analyses signals recorded within the patient's brain and classifies them as recorded within the STN or not. The constructed classifier discriminates signals with a sensitivity of 0.97 and a specificity of 0.96. The described algorithm is currently used for deep-brain stimulation surgeries among PD patients.
机译:数字信号处理,例如滤波,信息提取和各种结果的融合,目前是高级医疗疗法的一个组成部分。在深脑刺激手术期间,在神经外科尤其重要。在这种过程中,使用特殊电极访问手术目标,同时不直接可见。这需要在整个手术中非常精确地识别3D空间中的脑结构。在对帕金森病(Pd)的深脑刺激手术的情况下,目标区域 - 位于大脑内深处的亚粒子核(STN)-is。它也非常小(仅仅几毫米),这使得这一程序更加困难。因此,获取,过滤并最终融合各种信号,以向神经外部提供目标的确切位置。这些信号来自术前医学成像(如MRI和CT),以及使用特殊脑植入电极进行手术期间进行的脑活动的录像。使用本文中描述的方法,可以构建在手术期间的决策支持系统,分析记录在患者大脑内的信号,并将它们分类为记录在STN内。构造的分类器辨别具有0.97的灵敏度的信号,特异性为0.96。所描述的算法目前用于PD患者的深脑刺激手术。

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