稳定注视和主动视觉时刺激特征的表征。

IF 4.4 2区 医学 Q1 NEUROSCIENCES
Caoimhe Moran, Philippa A Johnson, Hinze Hogendoorn, Ayelet N Landau
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引用次数: 0

摘要

物体空间坐标从扫视前到扫视后的预测性更新有助于稳定的视觉感知。对象特征是否被预测性地重新映射仍然存在争议。我们开始描述在稳定注视和主动视觉期间特征处理的时空动态。为此,我们应用多元解码方法对人类参与者(男性和女性)观看简短视觉刺激时收集的脑电图(EEG)数据进行解码。刺激以高或低空间频率(SF)出现在视野的不同位置。在固定期间,分类器被训练来解码在一个中央凹旁位置呈现的SF,并对来自相同,邻近或更多外围位置的SF进行交叉测试。当在同一位置进行训练和测试时,SF在刺激开始后不久(~ 79 ms)被分类。在距离训练位置较远的位置出现SF解码较晚(约144 - 295 ms),解码延迟由偏心率调节。这种分析为特征信息在视野中的传播提供了详细的时间过程。接下来,我们研究了主动视觉如何影响SF信息的出现。当存在扫视时,旁中央凹位置周边SF的解码时间更早,表明由于扫视对SF的预测性预期。然而,至关重要的是,这种预测效果并不局限于特定的重新映射位置。相反,周围SF被正确分类,在加速的时间过程中,在所有中央凹旁位置。这表明在主动视觉过程中对刺激特征的空间粗糙、预测性预测,可能使跳眼着陆时的平滑过渡成为可能。在整个扫视过程中保持物体特征的连续表示对于稳定的视觉至关重要。为了表征刺激特征表征在大脑中的时空动态,我们在视野中的多个位置以高和低空间频率呈现刺激。应用脑电图解码方法,我们追踪了稳定注视和主动视觉时空间频率的神经表征。使用这种方法,我们提供了在注视过程中特征信息在整个视野中传播的详细时间过程。此外,当眼跳即将发生时,我们发现外围空间频率在眼跳后输入的预期中具有预测性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Representation of Stimulus Features during Stable Fixation and Active Vision.

Predictive updating of an object's spatial coordinates from presaccade to postsaccade contributes to stable visual perception. Whether object features are predictively remapped remains contested. We set out to characterize the spatiotemporal dynamics of feature processing during stable fixation and active vision. To do so, we applied multivariate decoding methods to EEG data collected while human participants (male and female) viewed brief visual stimuli. Stimuli appeared at different locations across the visual field at either high or low spatial frequency (SF). During fixation, classifiers were trained to decode SF presented at one parafoveal location and cross-tested on SF from either the same, adjacent, or more peripheral locations. When training and testing on the same location, SF was classified shortly after stimulus onset (∼79 ms). Decoding of SF at locations farther from the trained location emerged later (∼144-295 ms), with decoding latency modulated by eccentricity. This analysis provides a detailed time course for the spread of feature information across the visual field. Next, we investigated how active vision impacts the emergence of SF information. In the presence of a saccade, the decoding time of peripheral SF at parafoveal locations was earlier, indicating predictive anticipation of SF due to the saccade. Crucially, however, this predictive effect was not limited to the specific remapped location. Rather, peripheral SF was correctly classified, at an accelerated time course, at all parafoveal positions. This indicates spatially coarse, predictive anticipation of stimulus features during active vision, likely enabling a smooth transition on saccade landing.

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来源期刊
Journal of Neuroscience
Journal of Neuroscience 医学-神经科学
CiteScore
9.30
自引率
3.80%
发文量
1164
审稿时长
12 months
期刊介绍: JNeurosci (ISSN 0270-6474) is an official journal of the Society for Neuroscience. It is published weekly by the Society, fifty weeks a year, one volume a year. JNeurosci publishes papers on a broad range of topics of general interest to those working on the nervous system. Authors now have an Open Choice option for their published articles
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