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Human frequency following responses to iterated rippled noise with positive and negative gain: Differential sensitivity to waveform envelope and temporal fine-structure

机译:人体频率跟随具有正负增益的迭代波纹噪声的响应:对波形包络和时间精细结构的差分灵敏度

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摘要

The perceived pitch of iterated rippled noise (IRN) with negative gain (IRNn) is an octave lower than that of IRN with positive gain (IRNp). IRNp and IRNn have identical waveform envelopes (ENV), but differing stimulus waveform fine structure (TFS), which likely accounts for this perceived pitch difference. Here, we examine whether differences in the temporal pattern of phase-locked activity reflected in the human brainstem Frequency Following Response (FFR) elicited by IRNp and IRNn can account for the differences in perceived pitch for the two stimuli. FFRs using a single onset polarity were measured in 13 normal-hearing, adult listeners in response to IRNp and IRNn stimuli with 2 ms, and 4 ms delay. Autocorrelation functions (ACFs) and Fast Fourier Transforms (FFTs) were used to evaluate the dominant periodicity and spectral pattern (harmonic spacing) in the phase-locked FFR neural activity. For both delays, the harmonic spacing in the spectra corresponded more strongly with the perceived lowering of pitch from IRNp to IRNn, compared to the ACFs. These results suggest that the FFR elicited by a single polarity stimulus reflects phase-locking to both stimulus ENV and TFS. A post-hoc experiment evaluating the FFR phase-locked activity to ENV (FFRENV), and TFS (FFRTFS) elicited by IRNp and IRNn confirmed that only the phase-locked activity to the TFS, reflected in FFRTFS, showed differences in both spectra and ACF that closely matched the pitch difference between the two stimuli. The results of the post-hoc experiment suggests that pitch-relevant information is preserved in the temporal pattern of phase-locked activity and suggests that the differences in stimulus ENV and TFS driving the pitch percept of IRNp and IRNn are preserved in the brainstem neural response. The scalp recorded FFR may provide for a noninvasive analytic tool to evaluate the relative contributions of envelope and temporal fine-structure in the neural representation of complex sounds in humans.
机译:具有负增益(IRNn)的迭代波纹噪声(IRN)的感知音调比具有正增益(IRNp)的IRN的感知音调低八度。 IRNp和IRNn具有相同的波形包络(ENV),但激励波形的精细结构(TFS)不同,这很可能解释了这种感知的音高差异。在这里,我们检查由IRNp和IRNn引起的人脑干频率跟随反应(FFR)中反映的锁相活动的时间模式的差异是否可以解释两种刺激的音调差异。在13名正常听觉的成年听众中,对IRNp和IRNn刺激做出了2 ms和4 ms延迟的测量,使用了单一发作极性的FFR。自相关函数(ACF)和快速傅立叶变换(FFT)用于评估锁相FFR神经活动中的主要周期性和频谱模式(谐波间隔)。对于这两个延迟,与ACF相比,频谱中的谐波间隔与从IRNp到IRNn的音调降低的感知更强烈地对应。这些结果表明,单极性刺激引起的FFR反映了对ENV和TFS刺激的相位锁定。一项由IRNp和IRNn引发的评估FFR对ENV(FFRENV)和TFS(FFRTFS)的锁相活性的事后实验证实,只有FFRTFS中反映的对TFS的锁相活性显示出光谱和ACF紧密匹配两个刺激之间的音高差异。事后实验的结果表明,与音调相关的信息被保留在锁相活动的时间模式中,并表明刺激ENV和TFS的驱动IRNp和IRNn音调感知的差异在脑干神经反应中得以保留。 。头皮记录的FFR可提供一种非侵入性的分析工具,以评估人的复杂声音的神经表示中包络和时间精细结构的相对贡献。

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