Closed-loop optimal and automatic tuning of pulse amplitude and width in EMG-guided controllable transcranial magnetic stimulation.

IF 3.2 4区 医学 Q2 ENGINEERING, BIOMEDICAL
Biomedical Engineering Letters Pub Date : 2022-12-30 eCollection Date: 2023-05-01 DOI:10.1007/s13534-022-00259-3
S M Mahdi Alavi, Fidel Vila-Rodriguez, Adam Mahdi, Stefan M Goetz
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引用次数: 0

Abstract

This paper proposes an efficient algorithm for automatic and optimal tuning of pulse amplitude and width for sequential parameter estimation (SPE) of the neural membrane time constant and input-output (IO) curve parameters in closed-loop electromyography-guided (EMG-guided) controllable transcranial magnetic stimulation (cTMS). The proposed SPE is performed by administering a train of optimally tuned TMS pulses and updating the estimations until a stopping rule is satisfied or the maximum number of pulses is reached. The pulse amplitude is computed by the Fisher information maximization. The pulse width is chosen by maximizing a normalized depolarization factor, which is defined to separate the optimization and tuning of the pulse amplitude and width. The normalized depolarization factor maximization identifies the critical pulse width, which is an important parameter in the identifiability analysis, without any prior neurophysiological or anatomical knowledge of the neural membrane. The effectiveness of the proposed algorithm is evaluated through simulation. The results confirm satisfactory estimation of the membrane time constant and IO curve parameters for the simulation case. By defining the stopping rule based on the satisfaction of the convergence criterion with tolerance of 0.01 for 5 consecutive times for all parameters, the IO curve parameters are estimated with 52 TMS pulses, with absolute relative estimation errors (AREs) of less than 7%. The membrane time constant is estimated with 0.67% ARE, and the pulse width value tends to the critical pulse width with 0.16% ARE with 52 TMS pulses. The results confirm that the pulse width and amplitude can be tuned optimally and automatically to estimate the membrane time constant and IO curve parameters in real-time with closed-loop EMG-guided cTMS.

EMG 引导的可控经颅磁刺激中脉冲幅度和宽度的闭环优化和自动调整。
本文提出了一种自动优化调整脉冲幅度和宽度的高效算法,用于在闭环肌电图引导(EMG-guided)可控经颅磁刺激(cTMS)中对神经膜时间常数和输入输出(IO)曲线参数进行序列参数估计(SPE)。所提议的 SPE 是通过实施一连串经过优化调整的 TMS 脉冲并更新估计值,直到满足停止规则或达到最大脉冲数为止。脉冲幅度通过费雪信息最大化计算得出。脉冲宽度通过最大化归一化去极化因子来选择,该因子的定义是为了将脉冲幅度和宽度的优化和调整分开。归一化去极化因子最大化可确定临界脉冲宽度,这是可辨认性分析中的一个重要参数,而无需事先了解神经膜的神经生理学或解剖学知识。通过仿真评估了所提算法的有效性。结果证实,在模拟情况下,对膜时间常数和 IO 曲线参数的估计令人满意。根据所有参数连续 5 次满足容差为 0.01 的收敛标准来定义停止规则,用 52 个 TMS 脉冲估算出 IO 曲线参数,绝对相对估算误差 (ARE) 小于 7%。用 52 个 TMS 脉冲估计膜时间常数的绝对相对估计误差(ARE)为 0.67%,脉冲宽度值趋于临界脉冲宽度的绝对相对估计误差(ARE)为 0.16%。结果证实,闭环 EMG 引导 cTMS 可以自动优化调整脉冲宽度和振幅,以实时估计膜时间常数和 IO 曲线参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomedical Engineering Letters
Biomedical Engineering Letters ENGINEERING, BIOMEDICAL-
CiteScore
6.80
自引率
0.00%
发文量
34
期刊介绍: Biomedical Engineering Letters (BMEL) aims to present the innovative experimental science and technological development in the biomedical field as well as clinical application of new development. The article must contain original biomedical engineering content, defined as development, theoretical analysis, and evaluation/validation of a new technique. BMEL publishes the following types of papers: original articles, review articles, editorials, and letters to the editor. All the papers are reviewed in single-blind fashion.
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