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A systematic assessment of a cochlear implant processor's ability to encode interaural time differences

机译:对耳蜗植入处理器编码互连时间差异能力的系统评估

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Bilateral cochlear implantation is becoming the standard of care for patients with sensorineural hearing loss with demonstrated improvements over unilateral use in everyday tasks, such as sound localization ability. However, even with bilateral implantation, performance in these tasks is still poorer than that of normal hearing listeners. The gap in performance has often been attributed to the poor encoding of fine structure interaural time differences (ITDs) by clinical processor. However, in theory, the signal processing employed in clinical processors should still encode envelope ITDs with some degree of fidelity. In this work, we quantitatively measured the ability of Cochlear CP910 processors to encode envelope ITDs, while running the Advanced Combinational Encoder (ACE) strategy. Results suggest that while the processors are able to support relatively good envelope encoding, the peak-picking approach of the ACE strategy degrades the computation of ITDs by encoding spectral information in different frequency regions in the two ears. Our results may explain the poorer sound localization performance observed in cochlear implant users who use the ACE strategy, but cannot account for the poorer sound localization performance observed in cochlear implant users in general.
机译:双边耳蜗植入正在成为感觉神经听力损失患者的护理标准,并在日常任务中的单边使用的改进,例如声音本地化能力。然而,即使是双边植入,这些任务中的性能也比正常听觉听众更差。性能中的差距通常归因于临床处理器的细结构腔间时间差(ITDS)的编码差。然而,理论上,临床处理器中采用的信号处理仍应以一定程度的保真度编码包络ITD。在这项工作中,我们定量测量了CP910处理器对信封ITD进行编码的能力,同时运行高级组合编码器(ACE)策略。结果表明,虽然处理器能够支持相对良好的信封编码,但是ACE策略的峰值拣选方法通过在两个耳朵中的不同频率区域中编码光谱信息来降低ITD的计算。我们的结果可以解释使用ACE策略的耳蜗植入用户中观察到的较差的声音本地化表现,但不能考虑在Cochlear植入用户中观察到的较差的声音定位性能。

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