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Structure of receptive fields in a computational model of area 3b of primary sensory cortex

机译:初级感觉皮层区域3b的计算模型中的感受野结构

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摘要

In a previous work, we introduced a computational model of area 3b which is built upon the neural field theory and receives input from a simplified model of the index distal finger pad populated by a random set of touch receptors (Merkell cells). This model has been shown to be able to self-organize following the random stimulation of the finger pad model and to cope, to some extent, with cortical or skin lesions. The main hypothesis of the model is that learning of skin representations occurs at the thalamo-cortical level while cortico-cortical connections serve a stereotyped competition mechanism that shapes the receptive fields. To further assess this hypothesis and the validity of the model, we reproduced in this article the exact experimental protocol of DiCarlo et al. that has been used to examine the structure of receptive fields in area 3b of the primary somatosensory cortex. Using the same analysis toolset, the model yields consistent results, having most of the receptive fields to contain a single region of excitation and one to several regions of inhibition. We further proceeded our study using a dynamic competition that deeply influences the formation of the receptive fields. We hypothesized this dynamic competition to correspond to some form of somatosensory attention that may help to precisely shape the receptive fields. To test this hypothesis, we designed a protocol where an arbitrary region of interest is delineated on the index distal finger pad and we either (1) instructed explicitly the model to attend to this region (simulating an attentional signal) (2) preferentially trained the model on this region or (3) combined the two aforementioned protocols simultaneously. Results tend to confirm that dynamic competition leads to shrunken receptive fields and its joint interaction with intensive training promotes a massive receptive fields migration and shrinkage.
机译:在先前的工作中,我们介绍了基于神经场理论构建的区域3b的计算模型,并从由一组随机的触觉接收器(梅克尔细胞)组成的食指远端指尖简化模型接收输入。已经显示出该模型能够在手指垫模型的随机刺激之后自组织并且在一定程度上应对皮质或皮肤损伤。该模型的主要假设是,对皮肤表征的学习发生在丘脑皮质水平,而皮质皮质连接起到定型竞争机制的作用,该竞争机制塑造了感受野。为了进一步评估该假设和模型的有效性,我们在本文中复制了DiCarlo等人的确切实验方案。用来检查初级体感皮层区域3b的感受野的结构。使用相同的分析工具集,该模型可产生一致的结果,大多数接收场都包含单个激发区域和一个至几个抑制区域。我们使用一种动态竞争来进一步进行研究,这种竞争会深深影响感受野的形成。我们假设这种动态竞争与某种形式的体感注意相对应,这可能有助于精确地塑造感受力场。为了验证这一假设,我们设计了一种协议,其中在食指远端指垫上划出了任意感兴趣的区域,我们(1)明确指示模型关注该区域(模拟注意力信号)(2)优先训练(3)同时结合上述两个协议。结果倾向于证实动态竞争会导致接受域缩小,并且其与强化训练的联合相互作用会促进大量接受域的迁移和收缩。

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