首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Multistage Nonlinear Optimization to Recover Neural Activation Patterns From Evoked Compound Action Potentials of Cochlear Implant Users
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Multistage Nonlinear Optimization to Recover Neural Activation Patterns From Evoked Compound Action Potentials of Cochlear Implant Users

机译:多级非线性优化,从人工耳蜗用户诱发的复合动作电位中恢复神经激活模式

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Electrically evoked compound action potentials (ECAPs) have been employed as a measure of neural activation evoked by cochlear implant (CI) stimulation. A forward-masking procedure is commonly used to reduce stimulus artefacts. This method estimates the joint neural activation produced by two electrodes—one acting as probe and the other as masker; as such, the measured ECAPs depend on the activation patterns produced by both. We describe an approach–-termed panoramic ECAP (“PECAP”)–-that allows reconstruction of the underlying neural activation pattern of individual channels from ECAP amplitudes. The proposed approach combines two constrained nonlinear optimization stages. PECAP was validated against simulated and physiological data from CI users. The physiological data consisted of ECAPs measured from four users of Cochlear devices. For each subject, an ECAP amplitude matrix was measured using a forward-masking method. The results from computer simulations indicate that our approach can reliably estimate the underlying activation patterns from ECAP amplitudes even for instances of neural “dead regions” or cross-turn stimulation. The operating signal-to-noise ratio (SNR) for the proposed algorithm was 5 dB or higher, which matched well the SNR measured from human physiological data. Human ECAPs were fitted with our procedure to determine neural activation patterns. PECAP can be used to identify undesirable features of the neural activation pattern of individual CI users. Our approach may have clinical application as an objective measure of electrode-to-neuron interface and may be used to devise ad hoc stimulation strategies.
机译:电诱发的复合动作电位(ECAP)已被用作耳蜗植入(CI)刺激诱发的神经激活的量度。通常使用前向掩盖程序来减少刺激伪像。该方法估计了由两个电极产生的关节神经激活,一个电极充当探针,另一个充当掩蔽剂;因此,测得的ECAP取决于两者产生的激活模式。我们描述了一种称为全景ECAP(“ PECAP”)的方法,该方法可从ECAP振幅重构各个通道的潜在神经激活模式。该方法结合了两个约束非线性优化阶段。 PECAP已针对CI用户的模拟和生理数据进行了验证。生理数据由从四个Cochlear设备使用者处测得的ECAP组成。对于每个受试者,使用前向掩蔽方法测量ECAP振幅矩阵。计算机仿真的结果表明,即使对于神经“死区”或交叉转弯刺激,我们的方法也可以根据ECAP幅度可靠地估算潜在的激活模式。所提出算法的工作信噪比(SNR)为5 dB或更高,与从人体生理数据测得的SNR很好匹配。人类ECAPs符合我们的程序,以确定神经激活模式。 PECAP可用于识别单个CI用户的神经激活模式的不良特征。我们的方法可能在临床上作为电极与神经元界面的客观指标,并可能被用于设计临时刺激策略。

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