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Analyzing Stimulus-frequency Otoacoustic Emission Fine Structure Using an Additive Model*

机译:使用加性模型分析刺激频率耳声发射的精细结构*

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A good understanding of the origin of stimulus-frequency otoacoustic emission (SFOAE) fine structure in human ears and its probe level-dependency has potential clinical significance. In this study, we develop a two-component additive model, with total SFOAE unmixed into short- and long-latency components (or reflections) using time windowing method, to investigate the origin of SFOAE fine structure in humans from 40 to 70 dB SPL. The two-component additive model predicts that a spectral notch seen in the amplitude fine structure is produced when short- and long-latency components have opposite phases and comparable magnitudes. And the depth of spectral notch is significantly correlated with the amplitude difference between the two separated components, as well as their degree of opposite phase. Our independent evidence for components contributing to SFOAE fine structure suggests that amplitude, phase and delay fine structure in the human SFOAEs are a construct of the complex addition of two or more internal reflections with different phase slops in the cochlea.
机译:对人耳中的刺激频率耳声发射(SFOAE)精细结构的起源及其探针水平依赖性的深入了解具有潜在的临床意义。在这项研究中,我们开发了一种两成分加性模型,使用时间窗方法将总SFOAE分解为短时和长时性成分(或反射),以研究40至70 dB SPL的人中SFOAE精细结构的起源。两组分加性模型预测,当短时延和长时延组分具有相反的相位和可比较的幅度时,会在振幅精细结构中产生一个光谱陷波。频谱陷波的深度与两个分离的分量之间的振幅差以及它们的反相程度显着相关。我们对构成SFOAE精细结构的成分的独立证据表明,人类SFOAE的振幅,相位和延迟精细结构是在耳蜗中具有不同相斜率的两个或多个内部反射复杂相加的构造。

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