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本文引用的文献

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Tonotopy in human auditory cortex examined with functional magnetic resonance imaging.利用功能磁共振成像对人类听觉皮层的音调定位进行研究。
Hum Brain Mapp. 1997;5(1):18-25. doi: 10.1002/(SICI)1097-0193(1997)5:1<18::AID-HBM3>3.0.CO;2-Q.
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Tonotopic organization of human auditory cortex.人类听觉皮层的音调组织。
Neuroimage. 2010 Apr 15;50(3):1202-11. doi: 10.1016/j.neuroimage.2010.01.046. Epub 2010 Jan 22.
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An auditory fMRI correlate of impulsivity.冲动性的听觉 fMRI 相关物。
Psychiatry Res. 2010 Feb 28;181(2):145-50. doi: 10.1016/j.pscychresns.2009.09.002. Epub 2010 Jan 18.
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Characterisation of the BOLD response time course at different levels of the auditory pathway in non-human primates.在非人类灵长类动物的听觉通路上不同水平对 BOLD 反应时程的特征描述。
Neuroimage. 2010 Apr 15;50(3):1099-108. doi: 10.1016/j.neuroimage.2009.12.103. Epub 2010 Jan 4.
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Binaural loudness summation for speech and tones presented via earphones and loudspeakers.双耳响度总和在耳机和扬声器中用于语音和音调的呈现。
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Influence of vehicle color on loudness judgments.车辆颜色对响度判断的影响。
J Acoust Soc Am. 2008 May;123(5):2477-9. doi: 10.1121/1.2890747.
7
Spectral loudness summation for sequences of short noise bursts.短噪声突发序列的频谱响度总和
J Acoust Soc Am. 2008 Feb;123(2):925-34. doi: 10.1121/1.2822318.
8
Use of perceptual weights to test a model of loudness summation.使用感知权重来测试响度总和模型。
J Acoust Soc Am. 2007 Sep;122(3):EL69. doi: 10.1121/1.2761918.
9
Silent and continuous fMRI scanning differentially modulate activation in an auditory language comprehension task.在一项听觉语言理解任务中,静息态和连续功能磁共振成像扫描对激活的调节存在差异。
Hum Brain Mapp. 2008 Jan;29(1):46-56. doi: 10.1002/hbm.20372.
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fMRI activation in relation to sound intensity and loudness.与声音强度和响度相关的功能磁共振成像激活
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声谱强度总和发生在初级听觉皮层。

Spectral loudness summation takes place in the primary auditory cortex.

机构信息

Medizinische Physik, Universität Oldenburg, Germany.

出版信息

Hum Brain Mapp. 2011 Sep;32(9):1483-96. doi: 10.1002/hbm.21123. Epub 2010 Sep 2.

DOI:10.1002/hbm.21123
PMID:20814962
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6869874/
Abstract

Auditory functional magnetic resonance imaging (fMRI) was used to assess neural activation in the human auditory brainstem (AB) and cortex (AC) as a function of bandwidth (BW). We recorded brain activation of 22 normal hearing listeners induced by band pass filtered pink noise stimuli with equal sound pressure level of 70 dB SPL. Tested bandwidths were 50, 500, 1,500, 3,000, 6,000, and 8,000 Hz. The center frequency was 4,000 Hz. Categorical loudness scaling had been performed in a silent booth with all of these stimuli. Loudness as a function of bandwidth followed a concave-shaped curve which reflected the influence of spectral loudness summation (SLS) for higher BW and the influence of large amplitude fluctuations for very low BW, which itself could be explained by peak-listening. While neural activation of the AB, as measured by the percent signal change from baseline (PSC), was tuned to the physical BW of the stimuli in a straight linear fashion, the trend of perceived loudness as a function of BW was reflected in several aspects by corresponding neural activation in the primary auditory cortex (PAC). Finally, from the absolute differences of the PSC between PAC and AB, gains in perceived loudness associated with SLS and the effect of large amplitude fluctuations could be predicted with an accuracy of 1-2 dB for the whole group of participants.

摘要

听觉功能磁共振成像(fMRI)用于评估人类听觉脑干(AB)和皮质(AC)的神经激活情况,作为带宽(BW)的函数。我们记录了 22 名正常听力听众的大脑激活情况,这些听众受到带通滤波粉红噪声刺激的影响,其声压级均为 70 dB SPL。测试的带宽为 50、500、1500、3000、6000 和 8000 Hz。中心频率为 4000 Hz。在静音亭中对所有这些刺激进行了类别响度标度。带宽与响度的关系呈凹形曲线,反映了较高 BW 下的频谱响度总和(SLS)的影响以及非常低 BW 下大振幅波动的影响,这本身可以通过峰值听力来解释。虽然 AB 的神经激活,如从基线的信号变化百分比(PSC)所测量的,以与刺激的物理 BW 呈直线线性方式调谐,但作为 BW 函数的感知响度的趋势在几个方面反映在初级听觉皮层(PAC)的相应神经激活中。最后,从 PAC 和 AB 之间 PSC 的绝对差异中,可以预测与 SLS 相关的感知响度增益和大振幅波动的影响,对于整个参与者群体,精度为 1-2 dB。