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Non-rectangular waveforms for neural stimulation with practical electrodes.用于实际电极神经刺激的非矩形波形。
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Differences among implanted pulse generator waveforms cause variations in the neural response to deep brain stimulation.植入式脉冲发生器波形之间的差异会导致对深部脑刺激的神经反应产生变化。
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Energy-optimal electrical excitation of nerve fibers.神经纤维的能量最优电刺激
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Axons, but not cell bodies, are activated by electrical stimulation in cortical gray matter. I. Evidence from chronaxie measurements.轴突而非细胞体可被皮质灰质中的电刺激激活。一、时值测量的证据。
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神经纤维电激发波形形状的效率分析。

Efficiency analysis of waveform shape for electrical excitation of nerve fibers.

机构信息

Biomedical Engineering Department, Duke University, Durham, NC 27708, USA.

出版信息

IEEE Trans Neural Syst Rehabil Eng. 2010 Jun;18(3):319-28. doi: 10.1109/TNSRE.2010.2047610. Epub 2010 Apr 12.

DOI:10.1109/TNSRE.2010.2047610
PMID:20388602
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3071515/
Abstract

Stimulation efficiency is an important consideration in the stimulation parameters of implantable neural stimulators. The objective of this study was to analyze the effects of waveform shape and duration on the charge, power, and energy efficiency of neural stimulation. Using a population model of mammalian axons and in vivo experiments on cat sciatic nerve, we analyzed the stimulation efficiency of four waveform shapes: square, rising exponential, decaying exponential, and rising ramp. No waveform was simultaneously energy-, charge-, and power-optimal, and differences in efficiency among waveform shapes varied with pulse width (PW). For short PWs (< or = 0.1 ms), square waveforms were no less energy-efficient than exponential waveforms, and the most charge-efficient shape was the ramp. For long PW s (> or = 0.5 ms), the square was the least energy-efficient and charge-efficient shape, but across most PW s, the square was the most power-efficient shape. Rising exponentials provided no practical gains in efficiency over the other shapes, and our results refute previous claims that the rising exponential is the energy-optimal shape. An improved understanding of how stimulation parameters affect stimulation efficiency will help improve the design and programming of implantable stimulators to minimize tissue damage and extend battery life.

摘要

刺激效率是植入式神经刺激器刺激参数的一个重要考虑因素。本研究的目的是分析波形形状和持续时间对神经刺激的电荷、功率和能量效率的影响。使用哺乳动物轴突群体模型和猫坐骨神经的体内实验,我们分析了四种波形形状(方形、上升指数形、下降指数形和上升斜坡形)的刺激效率。没有一种波形在能量、电荷和功率方面同时达到最优,而且波形形状之间的效率差异随脉冲宽度(PW)而变化。对于短 PW(< 或 = 0.1 ms),方形波形的能量效率不低于指数波形,而最具电荷效率的形状是斜坡形。对于长 PW(> 或 = 0.5 ms),方形是能量和电荷效率最低的形状,但在大多数 PW 中,方形是功率效率最高的形状。上升指数形与其他形状相比没有提供实际的效率增益,我们的结果反驳了以前关于上升指数形是能量最优形状的说法。更好地理解刺激参数如何影响刺激效率将有助于改进植入式刺激器的设计和编程,以最大程度地减少组织损伤并延长电池寿命。