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Loudness and pitch perception using Dynamically Compensated Virtual Channels

机译:使用动态补偿虚拟通道的响度和音调感知

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摘要

Reducing power consumption is important for the development of smaller cochlear implant (CI) speech processors. Simultaneous electrode stimulation may improve power efficiency by minimizing the required current applied to a given electrode. Simultaneous in-phase stimulation on adjacent electrodes (i.e. virtual channels) can be used to elicit pitch percepts intermediate to the ones provided by each of the physical electrodes in isolation. Virtual channels are typically implemented in monopolar stimulation mode, producing broad excitation patterns. Focused stimulation may reduce the excitation patterns, but is inefficient in terms of power consumption. To create a more power efficient virtual channel, we developed the Dynamically Compensated Virtual Channel (DC-VC) using four adjacent electrodes. The two central electrodes are current steered using the coefficient α (0 < α < 1) whereas the two flanking electrodes are used to focus/unfocus the stimulation with the coefficient σ(−1<σ<1). With increasing values of σ, power can be saved at the potential expense of generating broader electric fields. Additionally, reshaping the electric fields might also alter place pitch coding.The goal of the present study is to investigate the tradeoff between place pitch encoding and power savings using simultaneous electrode stimulation in the DC-VC configuration. A computational model and psychophysical experiments in CI users have been used for that purpose.Results from 10 adult Advanced Bionics CI users have been collected. Results show that the required current to produce comfortable levels is significantly reduced with increasing σ as predicted by the computational model. Moreover, no significant differences in the estimated number of discriminable steps were detected for the different values of σ. From these results, we conclude that DC-VCs can reduce power consumption without decreasing the number of discriminable place pitch steps.
机译:降低功耗对于开发较小的人工耳蜗(CI)语音处理器很重要。同时电极刺激可以通过最小化施加到给定电极的所需电流来提高功率效率。相邻电极(即,虚拟通道)上的同时同相刺激可用于引起在每个物理电极隔离提供的螺距中间的螺距感知。虚拟通道通常以单极刺激模式实施,从而产生较宽的激励模式。集中刺激可以减少激励模式,但是在功耗方面效率低下。为了创建更节能的虚拟通道,我们使用四个相邻电极开发了动态补偿虚拟通道(DC-VC)。两个中央电极使用系数α(0 <α<1)进行电流控制,而两个侧面电极用于以系数σ(-1 <σ<1)聚焦/未聚焦刺激。随着σ值的增加,可以节省功率,但有可能产生更大的电场。另外,重塑电场也可能会改变位置间距编码。本研究的目的是研究在DC-VC配置中使用同时电极刺激的位置间距编码与节能之间的权衡。为此,我们使用了CI用户的计算模型和心理物理实验,并收集了10位成人高级仿生学CI用户的结果。结果表明,如计算模型所预测的,随着σ的增加,产生舒适水平所需的电流将大大降低。此外,对于不同的σ值,在可判别的步骤的估计数量中没有发现显着差异。根据这些结果,我们得出结论,DC-VC可以减少功耗,而不会减少可分辨的位置螺距步数。

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