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本文引用的文献

1
Timescales of inference in visual adaptation.视觉适应中的推理时间尺度。
Neuron. 2009 Mar 12;61(5):750-61. doi: 10.1016/j.neuron.2009.01.019.
2
Attentional modulation of visual responses by flexible input gain.通过灵活的输入增益对视觉反应进行注意力调制。
J Neurophysiol. 2009 Apr;101(4):2089-106. doi: 10.1152/jn.90654.2008. Epub 2009 Feb 4.
3
The normalization model of attention.注意力的规范化模型。
Neuron. 2009 Jan 29;61(2):168-85. doi: 10.1016/j.neuron.2009.01.002.
4
Gain modulation by nicotine in macaque v1.猕猴初级视觉皮层中尼古丁引起的增益调制
Neuron. 2007 Nov 21;56(4):701-13. doi: 10.1016/j.neuron.2007.09.034.
5
Benefits of contrast normalization demonstrated in neurons and model cells.在神经元和模型细胞中显示出的对比度归一化的益处。
J Neurosci. 2007 Jul 25;27(30):8071-9. doi: 10.1523/JNEUROSCI.1093-07.2007.
6
Modulation of transient and sustained response components of V4 neurons by temporal crowding in flashed stimulus sequences.在闪烁刺激序列中,通过时间拥挤对V4神经元的瞬态和持续反应成分进行调制。
J Neurosci. 2006 Sep 20;26(38):9683-94. doi: 10.1523/JNEUROSCI.5495-05.2006.
7
Effects of spatial attention on contrast response functions in macaque area V4.空间注意对猕猴V4区对比度响应函数的影响。
J Neurophysiol. 2006 Jul;96(1):40-54. doi: 10.1152/jn.01207.2005.
8
Unraveling the attentional functions of cortical cholinergic inputs: interactions between signal-driven and cognitive modulation of signal detection.揭示皮质胆碱能输入的注意力功能:信号驱动与信号检测认知调制之间的相互作用。
Brain Res Brain Res Rev. 2005 Feb;48(1):98-111. doi: 10.1016/j.brainresrev.2004.08.006.
9
Extraction of the average and differential dynamical response in stimulus-locked experimental data.提取刺激锁定实验数据中的平均和差异动力学响应。
J Neurosci Methods. 2005 Feb 15;141(2):223-9. doi: 10.1016/j.jneumeth.2004.06.012.
10
Goal-related activity in V4 during free viewing visual search. Evidence for a ventral stream visual salience map.自由观看视觉搜索过程中V4区与目标相关的活动。腹侧视觉显著图的证据。
Neuron. 2003 Dec 18;40(6):1241-50. doi: 10.1016/s0896-6273(03)00764-5.

V4区中适应的注意力调制

Attentional modulation of adaptation in V4.

作者信息

Hudson Andrew E, Schiff Nicholas D, Victor Jonathan D, Purpura Keith P

机构信息

Department of Anesthesiology, Weill Cornell Medical College, New York, NY 10021, USA.

出版信息

Eur J Neurosci. 2009 Jul;30(1):151-71. doi: 10.1111/j.1460-9568.2009.06803.x. Epub 2009 Jun 25.

DOI:10.1111/j.1460-9568.2009.06803.x
PMID:19558603
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2770238/
Abstract

Adaptation and visual attention are two processes that alter neural responses to luminance contrast. Rapid contrast adaptation changes response size and dynamics at all stages of visual processing, while visual attention has been shown to modulate both contrast gain and response gain in macaque extrastriate visual cortex. Because attention aims to enhance behaviorally relevant sensory responses while adaptation acts to attenuate neural activity, the question we asked is, how does attention alter adaptation? We present here single-unit recordings from V4 of two rhesus macaques performing a cued target detection task. The study was designed to characterize the effects of attention on the size and dynamics of a sequence of responses produced by a series of flashed oriented gratings parametric in luminance contrast. We found that the effect of attention on the response dynamics of V4 neurons is inconsistent with a mechanism that only alters the effective stimulus contrast, or only rescales the gain of the response. Instead, the action of attention modifies contrast gain early in the task, and modifies both response gain and contrast gain later in the task. We also show that responses to attended stimuli are more closely locked to the stimulus cycle than unattended responses, and that attended responses show less of the phase lag produced by adaptation than unattended responses. The phase advance generated by attention of the adapted responses suggests that the attentional gain control operates in some ways like a contrast gain control utilizing a neural measure of contrast to influence dynamics.

摘要

适应和视觉注意是两个改变神经对亮度对比度反应的过程。快速对比度适应会在视觉处理的各个阶段改变反应大小和动态,而视觉注意已被证明会调节猕猴纹外视觉皮层中的对比度增益和反应增益。由于注意旨在增强行为相关的感觉反应,而适应则是为了减弱神经活动,我们提出的问题是,注意如何改变适应?我们在此展示了两只恒河猴在执行线索化目标检测任务时V4区的单神经元记录。该研究旨在表征注意对一系列按亮度对比度参数化的闪烁定向光栅所产生的反应序列的大小和动态的影响。我们发现,注意对V4神经元反应动态的影响与仅改变有效刺激对比度或仅重新调整反应增益的机制不一致。相反,注意的作用在任务早期修改对比度增益,在任务后期修改反应增益和对比度增益。我们还表明,对被注意刺激的反应比未被注意的反应更紧密地锁定在刺激周期上,并且被注意的反应比未被注意的反应表现出更少的由适应产生的相位滞后。注意对适应反应产生的相位提前表明,注意增益控制在某些方面的运作类似于利用对比度的神经测量来影响动态的对比度增益控制。

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