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在CII和HiRes 90K用户中使用电流控制来提高光谱分辨率。

Using current steering to increase spectral resolution in CII and HiRes 90K users.

作者信息

Koch Dawn Burton, Downing Mark, Osberger Mary Joe, Litvak Leonid

机构信息

Advanced Bionics Corporation, Valencia, CA 91355, USA.

出版信息

Ear Hear. 2007 Apr;28(2 Suppl):38S-41S. doi: 10.1097/AUD.0b013e31803150de.

Abstract

OBJECTIVES

The HiResolution Bionic Ear has the capability of creating virtual spectral channels using current steering. Through simultaneous delivery of current to pairs of adjacent electrodes, it is hypothesized that the effective locus of stimulation can be steered to sites between the contacts by varying the proportion of current delivered to each electrode of the pair. Thus, theoretically, many intermediate regions of stimulation can be created with fine control over the proportion and amplitude of current delivered to each electrode. This study investigated the number of spectral channels-or different pitches-that could be resolved by adult users of the CII and HiRes 90K cochlear implants when current steering was applied to three pairs of electrodes along the implanted array.

DESIGN

Subjects were postlinguistically deafened adults recruited from the general CII and HiRes 90K user populations at 11 participating study sites. After loudness balancing and pitch ranking electrode pairs (2 and 3, 8 and 9, 13 and 14), an adaptive paradigm was used to estimate the number of intermediate pitch percepts that could be heard for each pair when current steering was implemented. Those data were used to estimate the potential number of spectral channels for each electrode pair.

RESULTS

Data from 57 implanted ears indicated that the numbers of spectral channels per electrode pair ranged from one (subjects who could not tell the electrodes apart) to 52 (an individual who had 52 different pitch percepts for the midarray pair of electrodes). The average numbers of spectral channels that could be distinguished were 5.4 for the basal electrode pair, 8.7 for the midarray electrode pair, and 7.2 for the apical electrode pair. Assuming that the average numbers of spectral channels for these three electrode pairs were representative of the entire 16-contact array, the potential total numbers of spectral channels could be estimated. For the 57 ears, the number of potential channels ranged from 8 to 466, with an average of 93.

CONCLUSIONS

The HiResolution Bionic Ear has the ability to steer current through simultaneous stimulation of adjacent electrode contacts. These data show that the majority of subjects perceive additional spectral channels other than those associated with stimulation of the fixed electrodes when current steering is implemented. The results suggest that the average cochlear implant user may have significantly more place-pitch capability than is exploited presently by cochlear implant systems. Current steering will be implemented in a wearable sound-processing strategy that can deliver up to 120 spectral channels to CII and HiRes 90K recipients. The new strategy takes advantage of untapped capabilities of the CII/HiRes 90K implanted electronics and will be implemented through software, with no additional surgery required. It is anticipated that the improved spectral resolution offered by current steering will lead to better speech perception in noise and improved music appreciation.

摘要

目的

高分辨率仿生耳具有利用电流控制创建虚拟频谱通道的能力。通过同时向相邻电极对输送电流,据推测,通过改变输送到电极对中每个电极的电流比例,刺激的有效位点可以被引导到电极触点之间的位置。因此,从理论上讲,可以创建许多中间刺激区域,并能精细控制输送到每个电极的电流比例和幅度。本研究调查了成年CII和HiRes 90K人工耳蜗使用者在沿植入阵列的三对电极上应用电流控制时能够分辨的频谱通道数量或不同音调数量。

设计

研究对象为从11个参与研究地点的CII和HiRes 90K普通用户群体中招募的语后聋成年人。在进行响度平衡和音调排序电极对(2和3、8和9、13和14)之后,采用自适应范式来估计在实施电流控制时每对电极能够听到的中间音调感知数量。这些数据用于估计每个电极对的潜在频谱通道数量。

结果

来自57只植入耳的数据表明,每对电极的频谱通道数量从1个(无法区分电极的受试者)到52个(在中间阵列电极对中有52种不同音调感知的个体)不等。基底电极对能够区分的频谱通道平均数量为5.4个,中间阵列电极对为8.7个,顶端电极对为7.2个。假设这三对电极的频谱通道平均数量代表整个16触点阵列,那么可以估计潜在的频谱通道总数。对于这57只耳朵,潜在通道数量从8个到466个不等,平均为93个。

结论

高分辨率仿生耳具有通过同时刺激相邻电极触点来控制电流的能力。这些数据表明,在实施电流控制时,大多数受试者除了能感知与固定电极刺激相关的频谱通道外,还能感知到额外的频谱通道。结果表明,人工耳蜗的普通使用者可能具有比目前人工耳蜗系统所利用的显著更多的位置音调辨别能力。电流控制将应用于一种可穿戴的声音处理策略中,该策略可为CII和HiRes 90K使用者提供多达120个频谱通道。这种新策略利用了CII/HiRes 90K植入电子设备未被开发的能力,将通过软件实现,无需额外手术。预计电流控制提供的更高频谱分辨率将导致在噪声环境中更好的言语感知和更好的音乐欣赏效果。

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