Predictable motion is progressively extrapolated across temporally distinct processing stages in the human visual cortex.

IF 9.8 1区 生物学 Q1 Agricultural and Biological Sciences
William Turner, Charlie Sexton, Philippa A Johnson, Ella Wilson, Hinze Hogendoorn
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引用次数: 0

Abstract

Neural processing of sensory information takes time. Consequently, to estimate the current state of the world, the brain must rely on predictive processes-for example, extrapolating the motion of a ball to determine its probable present position. Some evidence implicates early (pre-cortical) processing in extrapolation, but it remains unclear whether extrapolation continues during later-stage (cortical) processing, where further delays accumulate. Moreover, the majority of such evidence relies on invasive neurophysiological techniques in animals, with accurate characterization of extrapolation effects in the human brain currently lacking. Here, we address these issues by demonstrating how precise probabilistic maps can be constructed from human EEG recordings. Participants (N = 18, two sessions) viewed a stimulus moving along a circular trajectory while EEG was recorded. Using linear discriminant analysis (LDA) classification, we extracted maps of stimulus location over time and found evidence of a forwards temporal shift occurring across temporally distinct processing stages. This accelerated emergence of position representations indicates extrapolation occurring at multiple stages of processing, with representations progressively shifted closer to real-time. We further show evidence of representational overshoot during early-stage processing following unexpected changes to an object's trajectory, and demonstrate that the observed dynamics can emerge without supervision in a simulated neural network via spike-timing-dependent plasticity.

可预测的运动是在人类视觉皮层的时间上不同的处理阶段逐步外推的。
感官信息的神经处理需要时间。因此,为了估计世界的当前状态,大脑必须依靠预测过程——例如,推断一个球的运动来确定它可能的当前位置。一些证据暗示了外推的早期(皮层前)加工,但仍不清楚外推是否在后期(皮层)加工中继续进行,在那里进一步的延迟积累。此外,大多数此类证据依赖于动物的侵入性神经生理学技术,目前缺乏对人脑外推效应的准确描述。在这里,我们通过演示如何从人类脑电图记录构建精确的概率图来解决这些问题。参与者(N = 18,两组)在记录脑电图的同时观看沿圆形轨迹运动的刺激。使用线性判别分析(LDA)分类,我们提取了刺激位置随时间变化的地图,并发现了在时间不同的加工阶段发生向前时间转移的证据。这种位置表征的加速出现表明外推发生在多个处理阶段,表征逐渐向实时靠拢。我们进一步展示了在物体轨迹发生意外变化后的早期处理过程中存在表征超调的证据,并证明了观察到的动态可以在没有监督的情况下通过峰值时间依赖的可塑性在模拟神经网络中出现。
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来源期刊
PLoS Biology
PLoS Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-BIOLOGY
CiteScore
15.40
自引率
2.00%
发文量
359
审稿时长
3-8 weeks
期刊介绍: PLOS Biology is the flagship journal of the Public Library of Science (PLOS) and focuses on publishing groundbreaking and relevant research in all areas of biological science. The journal features works at various scales, ranging from molecules to ecosystems, and also encourages interdisciplinary studies. PLOS Biology publishes articles that demonstrate exceptional significance, originality, and relevance, with a high standard of scientific rigor in methodology, reporting, and conclusions. The journal aims to advance science and serve the research community by transforming research communication to align with the research process. It offers evolving article types and policies that empower authors to share the complete story behind their scientific findings with a diverse global audience of researchers, educators, policymakers, patient advocacy groups, and the general public. PLOS Biology, along with other PLOS journals, is widely indexed by major services such as Crossref, Dimensions, DOAJ, Google Scholar, PubMed, PubMed Central, Scopus, and Web of Science. Additionally, PLOS Biology is indexed by various other services including AGRICOLA, Biological Abstracts, BIOSYS Previews, CABI CAB Abstracts, CABI Global Health, CAPES, CAS, CNKI, Embase, Journal Guide, MEDLINE, and Zoological Record, ensuring that the research content is easily accessible and discoverable by a wide range of audiences.
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