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How lateral inhibition and fast retinogeniculo-cortical oscillations create vision: A new hypothesis

机译:如何抑制和快速降温纤维 - 皮质振荡创造视力:一个新的假设

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The role of the physiological processes involved in human vision escapes clarification in current literature. Many unanswered questions about vision include: 1) whether there is more to lateral inhibition than previously proposed, 2) the role of the discs in rods and cones, 3) how inverted images on the retina are converted to erect images for visual perception, 4) what portion of the image formed on the retina is actually processed in the brain, 5) the reason we have an after-image with antagonistic colors, and 6) how we remember space. This theoretical article attempts to clarify some of the physiological processes involved with human vision. The global integration of visual information is conceptual; therefore, we include illustrations to present our theory. Universally, the eyeball is 2.4 cm and works together with membrane potential, correspondingly representing the retinal layers, photoreceptors, and cortex. Images formed within the photoreceptors must first be converted into chemical signals on the photoreceptors' individual discs and the signals at each disc are transduced from light photons into electrical signals. We contend that the discs code the electrical signals into accurate distances and are shown in our figures. The pre-existing oscillations among the various cortices including the striate and parietal cortex, and the retina work in unison to create an infrastructure of visual space that functionally "places" the objects within this "neural" space. The horizontal layers integrate all discs accurately to create a retina that is pre-coded for distance. Our theory suggests image inversion never takes place on the retina, but rather images fall onto the retina as compressed and coiled, then amplified through lateral inhibition through intensification and amplification on the OFF-center cones. The intensified and amplified images are decompressed and expanded in the brain, which become the images we perceive as external vision. Summary: This is a theoretical article presenting a novel hypothesis about the physiological processes in vision, and expounds upon the visual aspect of two of our previously published articles, "A unified 3D default space consciousness model combining neurological and physiological processes that underlie conscious experience", and "Functional representation of vision within the mind: A visual consciousness model based in 3D default space." Currently, neuroscience teaches that visual images are initially inverted on the retina, processed in the brain, and then conscious perception of vision happens in the visual cortex. Here, we propose that inversion of visual images never takes place because images enter the retina as coiled and compressed graded potentials that are intensified and amplified in OFF-center photoreceptors. Once they reach the brain, they are decompressed and expanded to the original size of the image, which is perceived by the brain as the external image.
机译:人体视觉中涉及的生理过程的作用逃离了当前文献的澄清。关于愿景的许多未解决的问题包括:1)是否比以前提出的横向抑制更多,2)棒和锥体中的圆盘的作用,3)转换视网膜上的倒数图像如何转换为竖立图像以进行视觉感知,4 )在视网膜上形成的图像的哪个部分实际上在大脑中处理,5)我们具有拮抗颜色的图像的原因,以及我们记得空间的方式。这种理论文章试图澄清人类视力中涉及的一些生理过程。全球视觉信息的整合是概念性的;因此,我们包括呈现我们理论的插图。普遍地,眼球是2.4厘米,与膜电位一起工作,相应地代表视网膜层,感光体和皮质。在感光体内形成的图像必须首先转换成光感受器的单个盘上的化学信号,并且每个盘处的信号被从光光子转换成电信号。我们认为,光盘代码电信号进入准确的距离,并在我们的图中示出。各种皮质中的预先存在的振荡,包括条纹和榫廓皮质,以及视网膜的工作,以创造视觉空间的基础设施,这些内容在功能上“将”物体“的”神经“空间内的物体”。水平层准确地集成了所有光盘,以创建预编码距离的视网膜。我们的理论表明图像反转从未发生在视网膜上,而是图像落在视网膜上,如压缩和盘绕,然后通过偏离中心锥体的强化和扩增通过横向抑制放大。强化和放大的图像在大脑中解压并扩展,这成为我们认为外部视觉的图像。总结:这是一个关于愿景中的生理过程的新假设的理论文章,并阐述了我们以前公布的两篇文章的视觉方面,“一个统一的3D默认空间意识模型,结合了神经系统的生理过程”和“心灵内的愿景功能表示:基于3D默认空间的视觉意识模型。”目前,神经科学教导视觉图像最初在视网膜上倒置,在大脑中加工,然后在视觉皮层中有意识地发生了视觉的感知。在这里,我们提出了从未发生的视觉图像的反转,因为图像进入视网膜的线圈和压缩的渐变电位,其在偏心光感受器中加剧和放大。一旦它们到达大脑后,它们被解压缩并扩展到图像的原始大小,这被大脑所感知为外部图像。

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