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2
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3
Maps and streams in the auditory cortex: nonhuman primates illuminate human speech processing.听觉皮层中的图谱与信息流:非人灵长类动物为人类言语加工提供启示。
Nat Neurosci. 2009 Jun;12(6):718-24. doi: 10.1038/nn.2331. Epub 2009 May 26.
4
Encoding of spectral correlation over time in auditory cortex.听觉皮层中随时间变化的频谱相关性编码。
J Neurosci. 2008 Dec 3;28(49):13268-73. doi: 10.1523/JNEUROSCI.4596-08.2008.
5
Neural mechanisms for illusory filling-in of degraded speech.言语降解的虚幻填充的神经机制。
Neuroimage. 2009 Feb 1;44(3):1133-43. doi: 10.1016/j.neuroimage.2008.09.045. Epub 2008 Oct 15.
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Auditory adaptation in voice perception.语音感知中的听觉适应。
Curr Biol. 2008 May 6;18(9):684-8. doi: 10.1016/j.cub.2008.04.015.
7
The auditory continuity illusion: a parametric investigation and filter model.听觉连续性错觉:参数研究与滤波模型
Percept Psychophys. 2008 Jan;70(1):1-12. doi: 10.3758/pp.70.1.1.
8
Illusory vowels resulting from perceptual continuity: a functional magnetic resonance imaging study.由感知连续性产生的虚幻元音:一项功能磁共振成像研究。
J Cogn Neurosci. 2008 Oct;20(10):1737-52. doi: 10.1162/jocn.2008.20069.
9
Human cortical activity during streaming without spectral cues suggests a general neural substrate for auditory stream segregation.在没有频谱线索的流播放过程中的人类皮层活动表明了听觉流分离的一般神经基础。
J Neurosci. 2007 Nov 28;27(48):13074-81. doi: 10.1523/JNEUROSCI.2299-07.2007.
10
Hearing illusory sounds in noise: sensory-perceptual transformations in primary auditory cortex.在噪声中听到虚幻声音:初级听觉皮层中的感觉-知觉转换
J Neurosci. 2007 Nov 14;27(46):12684-9. doi: 10.1523/JNEUROSCI.2713-07.2007.

通过噪声追踪音高:非初级听觉皮层中的神经关联。

Tracking vocal pitch through noise: neural correlates in nonprimary auditory cortex.

机构信息

Department of Cognitive Neuroscience, Maastricht University, 6200 MD Maastricht, The Netherlands.

出版信息

J Neurosci. 2011 Jan 26;31(4):1479-88. doi: 10.1523/JNEUROSCI.3450-10.2011.

DOI:10.1523/JNEUROSCI.3450-10.2011
PMID:21273432
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6623603/
Abstract

In natural environments, a sound can be heard as stable despite the presence of other occasionally louder sounds. For example, when a portion in a voice is replaced by masking noise, the interrupted voice may still appear illusorily continuous. Previous research found that continuity illusions of simple interrupted sounds, such as tones, are accompanied by weaker activity in the primary auditory cortex (PAC) during the interruption than veridical discontinuity percepts of these sounds. Here, we studied whether continuity illusions of more natural and more complex sounds also emerge from this mechanism. We used psychophysics and functional magnetic resonance imaging in humans to measure simultaneously continuity ratings and blood oxygenation level-dependent activity to vowels that were partially replaced by masking noise. Consistent with previous results on tone continuity illusions, we found listeners' reports of more salient vowel continuity illusions associated with weaker activity in auditory cortex (compared with reports of veridical discontinuity percepts of physically identical stimuli). In contrast to the reduced activity to tone continuity illusions in PAC, this reduction was localized in the right anterolateral Heschl's gyrus, a region that corresponds more to the non-PAC. Our findings suggest that the ability to hear differently complex sounds as stable during other louder sounds may be attributable to a common suppressive mechanism that operates at different levels of sound representation in auditory cortex.

摘要

在自然环境中,尽管存在其他偶尔更响亮的声音,声音仍然可以被听为稳定。例如,当语音的一部分被掩蔽噪声取代时,中断的语音可能仍然看起来是虚幻的连续的。先前的研究发现,简单中断声音(如音调)的连续性错觉伴随着中断期间初级听觉皮层(PAC)的活动比这些声音的真实不连续性知觉弱。在这里,我们研究了更自然和更复杂的声音的连续性错觉是否也源于这种机制。我们使用心理物理学和功能磁共振成像技术在人类中同时测量到的元音的连续性评分和血氧水平依赖活性,这些元音部分被掩蔽噪声取代。与音调连续性错觉的先前结果一致,我们发现,与真实不连续性知觉的报告相比,听众对元音连续性错觉的报告更明显,与听觉皮层(与物理上相同刺激的真实不连续性知觉的报告相比)的活动较弱。与 PAC 中音调连续性错觉的活动减少相反,这种减少定位于右侧前外侧 Heschl 回,该区域对应于非 PAC 的区域。我们的研究结果表明,在其他更响亮的声音中听到不同复杂声音的能力可能归因于一种共同的抑制机制,该机制在听觉皮层的不同声音表示水平上起作用。