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Stimulus ensemble and cortical layer determine V1 spatial receptive fields

机译:刺激合奏和皮质层决定了V1空间感受野

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摘要

The concept of receptive field is a linear, feed-forward view of visual signal processing. Frequently used models of V1 neurons, like the dynamic linear filter static nonlinearity Poisson spike encoder model, predict that receptive fields measured with different stimulus ensembles should be similar. Here, we tested this concept by comparing spatiotemporal maps of V1 neurons derived from two very different, but commonly used, stimulus ensembles: sparse noise and Hartley subspace stimuli. We found maps from the two methods agreed for neurons in input layer 4C but were very different for neurons in superficial layers of V1. Many layer 2/3 cells have receptive fields with multiple elongated subregions when mapped with Hartley stimuli, but their spatial maps collapse to only a single, less-elongated subregion when mapped with sparse noise. Moreover, for upper layer V1 neurons, the preferred orientation for Hartley maps is much closer to the preferred orientation measured with drifting gratings than is the orientation preference of sparse-noise maps. These results challenge the concept of a stimulus-invariant receptive field and imply that intra-cortical interactions shape fundamental properties of layer 2/3 neurons.
机译:接收场的概念是视觉信号处理的线性前馈视图。 V1神经元的常用模型(例如动态线性滤波器静态非线性泊松尖峰编码器模型)预测,使用不同刺激集合测得的感受野应该相似。在这里,我们通过比较来自两个非常不同但常用的激励集合(稀疏噪声和Hartley子空间激励)的V1神经元的时空图,测试了这一概念。我们发现,这两种方法的映射都适用于输入层4C中的神经元,但对于V1浅层中的神经元却有很大不同。当使用Hartley刺激进行映射时,许多第2/3层细胞具有多个拉长的子区域的感受场,但是当使用稀疏噪声进行映射时,它们的空间图仅折叠成单个不那么拉长的子区域。此外,对于上层V1神经元而言,与稀疏噪声图的方向偏好相比,Hartley图的首选方向与通过漂移光栅测量的首选方向非常接近。这些结果挑战了刺激不变的感受野的概念,并暗示皮层内相互作用塑造第2/3层神经元的基本特性。

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