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From the Cover: Bayesian model of dynamic image stabilization in the visual system

机译:从封面开始:视觉系统中动态图像稳定的贝叶斯模型

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摘要

Humans can resolve the fine details of visual stimuli although the image projected on the retina is constantly drifting relative to the photoreceptor array. Here we demonstrate that the brain must take this drift into account when performing high acuity visual tasks. Further, we propose a decoding strategy for interpreting the spikes emitted by the retina, which takes into account the ambiguity caused by retinal noise and the unknown trajectory of the projected image on the retina. A main difficulty, addressed in our proposal, is the exponentially large number of possible stimuli, which renders the ideal Bayesian solution to the problem computationally intractable. In contrast, the strategy that we propose suggests a realistic implementation in the visual cortex. The implementation involves two populations of cells, one that tracks the position of the image and another that represents a stabilized estimate of the image itself. Spikes from the retina are dynamically routed to the two populations and are interpreted in a probabilistic manner. We consider the architecture of neural circuitry that could implement this strategy and its performance under measured statistics of human fixational eye motion. A salient prediction is that in high acuity tasks, fixed features within the visual scene are beneficial because they provide information about the drifting position of the image. Therefore, complete elimination of peripheral features in the visual scene should degrade performance on high acuity tasks involving very small stimuli.
机译:尽管投射在视网膜上的图像相对于感光体阵列不断漂移,但人类仍可以分辨视觉刺激的精细细节。在这里,我们证明了在执行高敏锐度视觉任务时,大脑必须考虑到这种漂移。此外,我们提出了一种解码策略,用于解释视网膜发出的尖峰,其中考虑到了视网膜噪声和视网膜上投影图像的未知轨迹所引起的歧义。在我们的建议中解决的一个主要困难是大量可能的刺激,这使得解决该问题的理想贝叶斯解决方案在计算上难以解决。相反,我们提出的策略建议在视觉皮层中实际实施。该实现涉及两个单元格,一个单元格跟踪图像的位置,另一个单元格表示图像本身的稳定估计。来自视网膜的尖峰会动态路由到两个种群,并以概率方式进行解释。我们考虑了神经电路的体系结构,该体系可以在人类注视眼动的测量统计数据下实施该策略及其性能。一个显着的预测是,在高敏锐度的任务中,视觉场景中的固定特征是有益的,因为它们提供了有关图像漂移位置的信息。因此,完全消除视觉场景中的外围特征会降低涉及非常小的刺激的高敏锐任务的性能。

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