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Critical spatial frequencies for illusory contour processing in early visual cortex.

机译:早期视觉皮层中虚构轮廓处理的关键空间频率。

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Single neurons in primate V2 and cat A18 exhibit identical orientation tuning for sinewave grating and illusory contour stimuli. This cue invariance is also manifested in similar orientation maps to these stimuli, but in V1/A17 the illusory contour maps appear reversed. We hypothesized that this map reversal depends upon the spatial frequencies of the inducers in the illusory contours, relative to the spatial selectivities of these brain areas. We employed intrinsic signal optical imaging to measure orientation maps in cat A17/18 to illusory contours with inducers at spatial frequencies from 0.15 to 1.6 cpd. A17 illusory contour maps were indeed reversed compared with grating-driven maps for inducer spatial frequencies <1.3 cpd, whereas A18 maps were invariant. Simulations based on known neurophysiology demonstrated that map reversal can arise from linear filtering, and map invariance can be explained by a nonlinear (filter-rectify-filter) mechanism. The simulation also correctly predicted that A17 could show invariant maps when the inducer spatial frequency is sufficiently high (1.6 cpd), and that A18 maps could reverse at lower inducer frequencies (0.18 cpd). Thus, the map reversal or invariance to illusory contours depends critically on the relationship of the inducer spatial frequencies to the spatial filtering properties of neurons in each brain area.
机译:灵长类动物V2和猫A18中的单个神经元对正弦波光栅和虚幻的轮廓刺激​​显示相同的方向调整。这种提示不变性也表现在与这些刺激相似的方向图上,但是在V1 / A17中,虚幻的轮廓图看起来是相反的。我们假设该图反转取决于假想轮廓中诱导物的空间频率,相对于这些大脑区域的空间选择性。我们采用内在信号光学成像技术,在空间频率从0.15到1.6 cpd的情况下,使用诱导器来测量Cat A17 / 18中指向虚幻轮廓的方向图。与诱导光栅空间频率<1.3 cpd的光栅驱动图相比,A17虚构轮廓图确实被颠倒了,而A18图则是不变的。基于已知神经生理学的模拟表明,映射逆转可以由线性滤波引起,并且映射不变性可以通过非线性(滤波-校正-滤波)机制来解释。该模拟还正确地预测,当诱导剂空间频率足够高(1.6 cpd)时,A17可能会显示不变的图,而在更低的诱导剂频率(0.18 cpd)下,A18的图可能会反转。因此,映射反转或对虚幻轮廓的不变性主要取决于诱导剂空间频率与每个大脑区域中神经元的空间过滤特性的关系。

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