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Adaptation and spectral enhancement at auditory temporal perceptual boundaries - Measurements via temporal precision of auditory brainstem responses

机译:听觉时间知觉边界处的适应和频谱增强-通过听觉脑干反应的时间精度进行测量

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摘要

In human and animal auditory perception the perceived quality of sound streams changes depending on the duration of inter-sound intervals (ISIs). Here, we studied whether adaptation and the precision of temporal coding in the auditory periphery reproduce general perceptual boundaries in the time domain near 20, 100, and 400 ms ISIs, the physiological origin of which are unknown. In four experiments, we recorded auditory brainstem responses with five wave peaks (P1 –P5) in response to acoustic models of communication calls of house mice, who perceived these calls with the mentioned boundaries. The newly introduced measure of average standard deviations of wave latencies of individual animals indicate the waves’ temporal precision (latency jitter) mostly in the range of 30–100 μs, very similar to latency jitter of single neurons. Adaptation effects of response latencies and latency jitter were measured for ISIs of 10–1000 ms. Adaptation decreased with increasing ISI duration following exponential or linear (on a logarithmic scale) functions in the range of up to about 200 ms ISIs. Adaptation effects were specific for each processing level in the auditory system. The perceptual boundaries near 20–30 and 100 ms ISIs were reflected in significant adaptation of latencies together with increases of latency jitter at P2-P5 for ISIs < ~30 ms and at P5 for ISIs < ~100 ms, respectively. Adaptation effects occurred when frequencies in a sound stream were within the same critical band. Ongoing low-frequency components/formants in a sound enhanced (decrease of latencies) coding of high-frequency components/formants when the frequencies concerned different critical bands. The results are discussed in the context of coding multi-harmonic sounds and stop-consonants-vowel pairs in the auditory brainstem. Furthermore, latency data at P1 (cochlea level) offer a reasonable value for the base-to-apex cochlear travel time in the mouse (0.342 ms) that has not been determined experimentally.
机译:在人类和动物的听觉感知中,声音流的感知质量会根据声音间隔(ISI)的持续时间而变化。在这里,我们研究了听觉外围的适应性和时间编码的精度是否在20、100和400 ms ISI的时域中重现了一般的感知边界,其生理起源尚不清楚。在四个实验中,我们记录了听觉脑干反应,该听觉脑干反应具有五个波峰(P1-P5),以响应于家鼠的通信呼叫的声学模型,后者以上述边界感知了这些呼叫。新引入的对单个动物的波潜伏期平均标准偏差的测量表明,波的时间精度(潜伏期抖动)主要在30-100μs的范围内,与单个神经元的潜伏期抖动非常相似。对于10–1000 ms的ISI,测量了响应延迟和等待时间抖动的适应效果。随着ISI持续时间的增加,ISI持续时间呈指数或线性变化(对数刻度),ISI持续时间最长可达200​​ ms。适应效果对于听觉系统中的每个处理级别都是特定的。接近20–30和100 ms ISI的感知边界分别反映在对延迟的显着适应以及ISI <〜30 ms的P2-P5和<〜100 ms的I5在P5的等待时间抖动的增加。当声音流中的频率在同一临界频段内时,会发生适应效果。当频率涉及不同的临界频带时,高频成分/共振峰的声音增强(等待时间的减少)编码中正在进行的低频成分/共振峰。在对听觉脑干中的多谐音和停止辅音元音对进行编码的上下文中讨论了结果。此外,P1(耳蜗水平)的潜伏期数据为小鼠从基尖到耳蜗的耳蜗传播时间(0.342 ms)提供了一个合理的值,该值尚未通过实验确定。

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  • 年(卷),期 -1(13),12
  • 年度 -1
  • 页码 e0208935
  • 总页数 26
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  • 入库时间 2022-08-21 11:06:16

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