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Applications of Phenomenological Loudness Models to Cochlear Implants

机译:现象学响度模型在鹅座植入物中的应用

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Cochlear implants electrically stimulate surviving auditory neurons in the cochlea to provide severely or profoundly deaf people with access to hearing. Signal processing strategies derive frequency-specific information from the acoustic signal and code amplitude changes in frequency bands onto amplitude changes of current pulses emitted by the tonotopically arranged intracochlear electrodes. This article first describes how parameters of the electrical stimulation influence the loudness evoked and then summarizes two different phenomenological models developed by McKay and colleagues that have been used to explain psychophysical effects of stimulus parameters on loudness, detection, and modulation detection. The Temporal Model is applied to single-electrode stimuli and integrates cochlear neural excitation using a central temporal integration window analogous to that used in models of normal hearing. Perceptual decisions are made using decision criteria applied to the output of the integrator. By fitting the model parameters to a variety of psychophysical data, inferences can be made about how electrical stimulus parameters influence neural excitation in the cochlea. The Detailed Model is applied to multi-electrode stimuli, and includes effects of electrode interaction at a cochlear level and a transform between integrated excitation and specific loudness. The Practical Method of loudness estimation is a simplification of the Detailed Model and can be used to estimate the relative loudness of any multi-electrode pulsatile stimuli without the need to model excitation at the cochlear level. Clinical applications of these models to novel sound processing strategies are described.
机译:耳蜗植入物在耳蜗中电刺激幸存的听觉神经元,以提供对听力的严重或深刻的聋人。信号处理策略从声学信号频带中的声学信号和码幅变化的频率幅度变化导出到由定位的interacochleabel电极发射的电流脉冲的幅度变化。本文首先介绍了电刺激的参数如何影响响​​度的响应,然后总结了由McKay和同事开发的两种不同的现象学模型,这些模型已经用于解释刺激参数对响度,检测和调制检测的刺激参数的心理物理作用。时间模型应用于单电极刺激,并使用类似于正常听力模型中使用的中心时间集成窗口集成了耳蜗神经激励。感知决定是使用应用于积分器的输出的判定标准进行的。通过将模型参数拟合到各种心理物理数据,可以涉及电刺激参数如何影响耳蜗中神经激发的推论。详细模型应用于多电极刺激,包括在耳蜗水平处的电极相互作用的效果和集成激励和特定响度之间的变换。响度估计的实用方法是详细模型的简化,并且可用于估计任何多电极脉动刺激的相对响度,而无需在耳蜗水平上模拟激发。描述了这些模型对新型声音处理策略的临床应用。

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