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电听觉中脉冲串前掩蔽后的心理物理学恢复

Psychophysical recovery from pulse-train forward masking in electric hearing.

作者信息

Nelson David A, Donaldson Gail S

机构信息

Clinical Psychoacoustics Laboratory, University of Minnesota, MMC396, Minneapolis, Minnesota 55455, USA.

出版信息

J Acoust Soc Am. 2002 Dec;112(6):2932-47. doi: 10.1121/1.1514935.

Abstract

Psychophysical pulse-train forward-masking (PTFM) recovery functions were measured in fifteen subjects with the Nucleus mini-22 cochlear implant and six subjects with the Clarion cochlear implant. Masker and probe stimuli were 500-Hz trains of 200- or 77-micros/phase biphasic current pulses. Electrode configurations were bipolar for Nucleus subjects and monopolar for Clarion subjects. Masker duration was 320 ms. Probe duration was either 10 ms or 30 ms. Recovery functions were measured for a high-level masker on a middle electrode in all 21 subjects, on apical and basal electrodes in 7 of the Nucleus and 3 of the Clarion subjects, and for multiple masker levels on the middle electrode in 8 Nucleus subjects and 6 Clarion subjects. Recovery functions were described by an exponential process in which threshold shift (in microA) decreased exponentially with increasing time delay between the offset of the masker pulse train and the offset of the probe pulse train. All but 3 of the 21 subjects demonstrated recovery time constants on a middle electrode that were less than 95 ms. The mean time constant for these 18 subjects was 54 ms (s.d. 17 ms). Three other subjects tested on three electrodes exhibited time constants larger than 95 ms from an apical electrode only. Growth-of-masking slopes depended upon time delay, as expected from an exponential recovery process, i.e., progressively shallower slopes were observed at time delays of 10 ms and 50 ms. Recovery of threshold shift (in microA) for PTFM in electrical hearing behaves inthe same way as recovery of threshold shift (in dB) for pure-tone forward masking in acoustic hearing. This supports the concept that linear microamps are the electrical equivalent of acoustic decibels. Recovery from PTFM was not related to speech recognition in a simple manner. Three subjects with prolonged PTFM recovery demonstrated poor speech scores. The remaining subjects with apparently normal PTFM recovery demonstrated speech scores ranging from poor to excellent. Findings suggest that normal PTFM recovery is only one of several factors associated with good speech recognition in cochlear-implant listeners. Comparisons of recovery curves for 10- and 30-ms probe durations in two subjects showed little or no temporal integration at time delays less than 95 ms where recovery functions have steep slopes. The same subjects exhibited large amounts of temporal integration at longer time delays where recovery slopes are more gradual. This suggests that probe detection depends primarily on detection of the final pulses in the probe stimulus and supports the use of offset-to-offset time delays for characterizing PTFM recovery in electric hearing.

摘要

对15名使用Nucleus mini - 22型人工耳蜗的受试者和6名使用Clarion人工耳蜗的受试者进行了心理物理学脉冲串前掩蔽(PTFM)恢复函数测量。掩蔽刺激和探测刺激均为500Hz的200微秒/相位或77微秒/相位双相电流脉冲串。对于使用Nucleus人工耳蜗的受试者,电极配置为双极;对于使用Clarion人工耳蜗的受试者,电极配置为单极。掩蔽刺激持续时间为320毫秒。探测刺激持续时间为10毫秒或30毫秒。在所有21名受试者中,对一名使用中间电极的高水平掩蔽刺激进行了恢复函数测量;在7名使用Nucleus人工耳蜗和3名使用Clarion人工耳蜗的受试者中,对顶电极和基底电极进行了测量;在8名使用Nucleus人工耳蜗和6名使用Clarion人工耳蜗的受试者中,对中间电极的多个掩蔽刺激水平进行了测量。恢复函数由一个指数过程描述,其中阈值偏移(以微安为单位)随着掩蔽脉冲串的结束与探测脉冲串的结束之间的时间延迟增加而呈指数下降。21名受试者中除3名外,其余受试者在中间电极上的恢复时间常数均小于95毫秒。这18名受试者的平均时间常数为54毫秒(标准差17毫秒)。另外三名在三个电极上进行测试的受试者仅在一个顶电极上表现出大于95毫秒的时间常数。掩蔽增长斜率取决于时间延迟,正如指数恢复过程所预期的那样,即在10毫秒和50毫秒的时间延迟处观察到斜率逐渐变浅。电听觉中PTFM的阈值偏移(以微安为单位)的恢复与声听觉中纯音前掩蔽阈值偏移(以分贝为单位)的恢复方式相同。这支持了线性微安是声学分贝的电等效物这一概念。PTFM恢复与言语识别之间不存在简单的关联。三名PTFM恢复时间延长的受试者言语得分较差。其余PTFM恢复明显正常的受试者言语得分范围从差到优。研究结果表明,正常的PTFM恢复只是与人工耳蜗使用者良好言语识别相关的几个因素之一。对两名受试者中10毫秒和30毫秒探测持续时间的恢复曲线进行比较,发现在恢复函数斜率较陡的小于95毫秒的时间延迟处,几乎没有或没有时间整合。在恢复斜率较平缓的较长时间延迟处,相同的受试者表现出大量的时间整合。这表明探测主要取决于探测刺激中最后脉冲的检测,并支持使用结束到结束的时间延迟来表征电听觉中的PTFM恢复。

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