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A method to improve the estimation of conduction velocity distributions over a short segment of nerve

机译:一种改善神经短段传导速度分布估计的方法

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Accurate, noninvasive determination of the distribution of conduction velocities (DCV) among fibers of a peripheral nerve has the potential to improve both clinical diagnoses of pathology and longitudinal studies of the progress of disease or the efficacy of treatments. Current techniques rely on long distances of propagation to increase the amount of temporal dispersion in the compound signals and reduce the relative effect of errors in the forward model. The method described in this paper attempts to reduce errors in DCV estimation through transfer function normalization and, thereby, eliminate the need for long segments of nerve. Compound action potential (CAP) signals are recorded from several, equally spaced electrodes in an array spanning only a 10-cm length of nerve. Relative nerve-to-electrode transfer functions (NETFs) between the nerve and each of the array electrodes are estimated by comparing discrete Fourier transforms of the array signals. NETFs are normalized along the array so that waveform differences can be attributed to the effects of temporal dispersion between recordings, and more accurate DCV estimates can be calculated from the short nerve segment. The method is tested using simulated and real CAP data. DCV estimates are improved for simulated signals. The normalization procedure results in DCVs that qualitatively match those from the literature when used on actual CAP recordings.
机译:准确,无创地确定周围神经纤维间传导速度(DCV)的分布可能会改善病理学的临床诊断和疾病进展或治疗效果的纵向研究。当前的技术依赖于长距离的传播来增加复合信号中的时间色散量并减少前向模型中误差的相对影响。本文中描述的方法试图通过传递函数归一化来减少DCV估计中的误差,从而消除了对长段神经的需要。化合物动作电位(CAP)信号从仅等距10厘米神经的阵列中的几个等距电极上记录下来。通过比较阵列信号的离散傅里叶变换,可以估算神经与每个阵列电极之间的相对神经到电极传递函数(NETF)。 NETFs沿阵列归一化,因此波形差异可以归因于记录之间的时间分散效应,并且可以从短神经段计算出更准确的DCV估计值。使用模拟和实际CAP数据对方法进行了测试。对于模拟信号,DCV估计得到了改进。当用于实际CAP记录时,归一化过程所产生的DCV在质量上与文献中的DCV相匹配。

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