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首页> 外文期刊>The Journal of the Acoustical Society of America >The case of the missing pitch templates: How harmonic templates emerge in the early auditory system
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The case of the missing pitch templates: How harmonic templates emerge in the early auditory system

机译:音调模板缺失的情况:谐波模板如何在早期听觉系统中出现

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摘要

Periodicity pitch is the most salient and important of all pitch percepts. Psychoacoustical models of this percept have long postulated the existence of internalized harmonic templates against which incoming resolved spectra can be compared, and pitch determined according to the best matching templates [J. Goldstein, J. Acoust. Soc. Am. 54, 1496-1516 (1973)]. However, it has been a mystery where and how such harmonic templates can come about. We present here a biologically plausible model for how such templates can form in the early stages of the auditory system. The model demonstrates that any broadband stimulus, including noise and random click trains, suffices for generating the templates, and that there is no need for any delay lines, oscillators, or other neural temporal structures. The model consists of two key stages: cochlear filtering followed by coincidence detection. The cochlear stage provides responses analogous to those recorded in the auditory nerve and cochlear nucleus. Specifically, it performs moderately sharp frequency analysis via a filterbank with tonotopically ordered center frequencies (CFs); the rectified and phase-locked filter responses are further enhanced temporally to resemble the synchronized responses of cells in the cochlear nucleus. The second stage is a matrix of coincidence detectors that compute the average pairwise instantaneous correlation (or product) between responses from all CFs across the channels. Model simulations show that for any broadband stimulus, a degree of high coincidence occurs among cochlear channels that are spaced precisely at harmonic intervals. Accumulating coincidences over time results in the formation of harmonic templates for all fundamental frequencies in the phase-locking frequency range. The model accounts for the critical role played by three subtle but important factors in cochlear function: the nonlinear transformations following the filtering stage, the rapid phase shifts of the traveling wave near its resonance, and the spectral resolution of the cochlear filters. Finally, we discuss the physiological correlates and location of such a process and its resulting templates.
机译:周期性音调是所有音调感知中最突出和最重要的。长期以来,这种感觉的心理声学模型假设存在内在谐波模板,可以将其与传入的解析频谱进行比较,并根据最佳匹配模板确定音调[J. Goldstein,J。Acoust。 Soc。上午。 54,1496-1516(1973)]。但是,如何生成谐波模板以及如何生成谐波一直是个谜。我们在这里提出一个生物学上可行的模型,以说明这种模板在听觉系统的早期阶段如何形成。该模型表明,任何宽带刺激,包括噪声和随机点击序列,都足以生成模板,并且不需要任何延迟线,振荡器或其他神经时间结构。该模型包括两个关键阶段:耳蜗过滤,然后是重合检测。耳蜗阶段提供的反应类似于听神经和耳蜗核中记录的反应。具体来说,它通过具有无序排列的中心频率(CF)的滤波器组执行适度尖锐的频率分析;整流和锁相滤波器的响应在时间上进一步增强,类似于耳蜗核中细胞的同步响应。第二阶段是一致性检测器矩阵,该矩阵计算通道中所有CF的响应之间的平均成对瞬时相关性(或乘积)。模型仿真表明,对于任何宽带刺激,在以谐波间隔精确间隔开的耳蜗通道之间都会发生一定程度的高度一致。随着时间的推移不断积累的巧合会导致形成锁相频率范围内所有基本频率的谐波模板。该模型说明了三个微妙但重要的因素在耳蜗功能中所起的关键作用:滤波阶段之后的非线性变换,行波在其共振附近的快速相移以及耳蜗滤波器的光谱分辨率。最后,我们讨论了这种过程的生理相关性和位置及其产生的模板。

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