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Modeling non-standard retinal in/out function using computer vision variational methods

机译:使用计算机视觉可变方法对非标准视网膜输入/输出功能进行建模

摘要

We propose a computational approach using a variational specification of the visual front-end, where ganglion cells with properties of retinal Konio cells (K-cells), are considered as a network, yielding a mesoscopic view of the retinal process. The variational framework is implemented as a simple mechanism of diffusion in a two-layered non-linear filtering mechanism with feedback, as observed in synaptic layers of the retina, while its biological plausibility, and capture functionalities as (i) stimulus adapted response; (ii) non-local noise reduction (i.e. segmentation); (iii) visual event detection, taking several visual cues into account: contrast and local texture, color or edge channels, and motion base in natural images. Those functionalities could be implemented in the biological tissues We use computer vision methods to propose an effective link between the observed functions and their possible implementation in the retinal network base on a two-layers network with non-separable local spatio-temporal convolution as input, and recurrent connections performing non-linear diffusion before prototype based visual event detection. The numerical robustness of the proposed model has been experimentally checked on real natural images. Finally, we discuss in base of experimental biological and computational results the generality of our description.
机译:我们提出了一种使用视觉前端的变体规范的计算方法,其中具有视网膜Konio细胞(K细胞)特性的神经节细胞被视为网络,从而产生了视网膜过程的介观视图。如在视网膜的突触层中所观察到的,变异框架被实现为具有反馈的两层非线性滤波机制中的扩散的简单机制,同时其生物学上的合理性和捕获功能为(i)刺激适应性反应; (ii)非本地降噪(即分段); (iii)视觉事件检测,要考虑多种视觉提示:对比度和局部纹理,颜色或边缘通道以及自然图像中的运动基础。这些功能可以在生物组织中实现。我们使用计算机视觉方法,在以不可分离的局部时空卷积作为输入的两层网络的基础上,在观察到的功能与它们在视网膜网络中的可能实现之间建立有效的联系,和循环连接在基于原型的视觉事件检测之前执行非线性扩散。已经在真实的自然图像上通过实验检查了所提出模型的数值鲁棒性。最后,我们在实验生物学和计算结果的基础上讨论了我们描述的一般性。

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