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1
The hearing ear is always found close to the speaking tongue: Review of the role of the motor system in speech perception.听话的耳朵总是离说话的舌头很近:运动系统在言语感知中的作用综述。
Brain Lang. 2017 Jan;164:77-105. doi: 10.1016/j.bandl.2016.10.004. Epub 2016 Nov 5.
2
Hearing impairment, cognition and speech understanding: exploratory factor analyses of a comprehensive test battery for a group of hearing aid users, the n200 study.听力障碍、认知与言语理解:针对一组助听器使用者的综合测试组套的探索性因素分析,即n200研究。
Int J Audiol. 2016 Nov;55(11):623-42. doi: 10.1080/14992027.2016.1219775. Epub 2016 Sep 2.
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Implementation errors in the GingerALE Software: Description and recommendations.GingerALE软件中的实施错误:描述与建议。
Hum Brain Mapp. 2017 Jan;38(1):7-11. doi: 10.1002/hbm.23342. Epub 2016 Aug 11.
4
Increased activity in frontal motor cortex compensates impaired speech perception in older adults.大脑额前运动皮层活跃度的增加补偿了老年人言语感知能力的下降。
Nat Commun. 2016 Aug 2;7:12241. doi: 10.1038/ncomms12241.
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Hearing Impairment and Cognitive Energy: The Framework for Understanding Effortful Listening (FUEL).听力障碍与认知能量:理解费力听力的框架(FUEL)
Ear Hear. 2016 Jul-Aug;37 Suppl 1:5S-27S. doi: 10.1097/AUD.0000000000000312.
6
Behavior, sensitivity, and power of activation likelihood estimation characterized by massive empirical simulation.通过大规模实证模拟表征的激活可能性估计的行为、敏感性和功效
Neuroimage. 2016 Aug 15;137:70-85. doi: 10.1016/j.neuroimage.2016.04.072. Epub 2016 May 11.
7
The Effect of Early Visual Deprivation on the Neural Bases of Auditory Processing.早期视觉剥夺对听觉处理神经基础的影响。
J Neurosci. 2016 Feb 3;36(5):1620-30. doi: 10.1523/JNEUROSCI.2559-15.2016.
8
Acoustic richness modulates the neural networks supporting intelligible speech processing.声学丰富度调节支持可理解语音处理的神经网络。
Hear Res. 2016 Mar;333:108-117. doi: 10.1016/j.heares.2015.12.008. Epub 2015 Dec 23.
9
Effects of task complexity on activation of language areas in a semantic decision fMRI protocol.语义决策功能磁共振成像协议中任务复杂性对语言区域激活的影响。
Neuropsychologia. 2016 Jan 29;81:140-148. doi: 10.1016/j.neuropsychologia.2015.12.020. Epub 2015 Dec 22.
10
Getting the Cocktail Party Started: Masking Effects in Speech Perception.开启鸡尾酒会效应:言语感知中的掩蔽效应
J Cogn Neurosci. 2016 Mar;28(3):483-500. doi: 10.1162/jocn_a_00913. Epub 2015 Dec 22.

在困难条件下的听力:一项激活似然估计元分析。

Listening under difficult conditions: An activation likelihood estimation meta-analysis.

机构信息

Rotman Research Institute, Baycrest Health Centre, Toronto, Ontario, Canada.

Department of Psychology, University of Toronto, Toronto, Ontario, Canada.

出版信息

Hum Brain Mapp. 2018 Jul;39(7):2695-2709. doi: 10.1002/hbm.24031. Epub 2018 Mar 13.

DOI:10.1002/hbm.24031
PMID:29536592
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6866419/
Abstract

The brain networks supporting speech identification and comprehension under difficult listening conditions are not well specified. The networks hypothesized to underlie effortful listening include regions responsible for executive control. We conducted meta-analyses of auditory neuroimaging studies to determine whether a common activation pattern of the frontal lobe supports effortful listening under different speech manipulations. Fifty-three functional neuroimaging studies investigating speech perception were divided into three independent Activation Likelihood Estimate analyses based on the type of speech manipulation paradigm used: Speech-in-noise (SIN, 16 studies, involving 224 participants); spectrally degraded speech using filtering techniques (15 studies involving 270 participants); and linguistic complexity (i.e., levels of syntactic, lexical and semantic intricacy/density, 22 studies, involving 348 participants). Meta-analysis of the SIN studies revealed higher effort was associated with activation in left inferior frontal gyrus (IFG), left inferior parietal lobule, and right insula. Studies using spectrally degraded speech demonstrated increased activation of the insula bilaterally and the left superior temporal gyrus (STG). Studies manipulating linguistic complexity showed activation in the left IFG, right middle frontal gyrus, left middle temporal gyrus and bilateral STG. Planned contrasts revealed left IFG activation in linguistic complexity studies, which differed from activation patterns observed in SIN or spectral degradation studies. Although there were no significant overlap in prefrontal activation across these three speech manipulation paradigms, SIN and spectral degradation showed overlapping regions in left and right insula. These findings provide evidence that there is regional specialization within the left IFG and differential executive networks underlie effortful listening.

摘要

支持困难听力条件下语音识别和理解的大脑网络尚未明确。假设支持费力听力的网络包括负责执行控制的区域。我们对听觉神经影像学研究进行了荟萃分析,以确定额叶的共同激活模式是否支持不同语音处理下的费力听力。对 53 项语音感知功能神经影像学研究进行了分析,这些研究根据所使用的语音处理范式类型分为三个独立的激活似然估计分析:噪声中的语音(SIN,16 项研究,涉及 224 名参与者);使用滤波技术的频谱降级语音(15 项研究,涉及 270 名参与者);以及语言复杂性(即句法、词汇和语义复杂程度/密度水平)(22 项研究,涉及 348 名参与者)。SIN 研究的荟萃分析显示,左额下回(IFG)、左顶下小叶和右岛叶的激活与更高的努力程度相关。使用频谱降级语音的研究显示双侧岛叶和左颞上回(STG)的激活增加。操纵语言复杂性的研究显示左额下回、右额中回、左颞中回和双侧 STG 的激活。计划对比显示语言复杂性研究中的左 IFG 激活与 SIN 或频谱降解研究中观察到的激活模式不同。尽管这三种语音处理范式的前额叶激活没有显著重叠,但 SIN 和频谱降解在左、右岛叶显示出重叠区域。这些发现为左 IFG 存在区域专业化以及费力听力的不同执行网络提供了证据。