SCWH-Vision Ocular Markers of Spiral Coherence Window Collapse A Cross-Scale Framework for Iris Dynamics, Retinal Oscillations and Early Neural Instability

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1. Verfasser: Garbar, Iryna
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Veröffentlicht: Zenodo 2025
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author Garbar, Iryna
author_facet Garbar, Iryna
contents <p>SCWH-Vision extends the Spiral Coherence Window Hypothesis (SCWH) to the human visual system, proposing that the <strong>eyes act as an early, accessible interface</strong> to underlying neural coherence dynamics.<br>The framework introduces the concept of <strong>ocular coherence windows</strong> – periods and spatial zones in which iris dynamics, ciliary muscle rhythms and retinal oscillations remain phase-stable and spiral-organized.</p> <p>SCWH-Vision suggests that:</p> <ol> <li> <p><strong>Enzymatic and metabolic dysrhythmia</strong> in ocular tissues (retina, ciliary body, iris) precede global neural instability.</p> </li> <li> <p><strong>Pupil behavior, microsaccades, accommodation patterns and contrast handling</strong> are sensitive markers of spiral coherence window drift.</p> </li> <li> <p>Early collapse of ocular coherence windows manifests as subtle visual instability long before overt cognitive symptoms arise.</p> </li> </ol> <p>The model does not propose diagnostic or therapeutic claims.<br>It offers an analytical and conceptual framework, linking SCWH to concrete, observable visual phenomena and motivating research on ocular markers of cross-scale coherence collapse.</p> <h3>2. Introduction</h3> <p>The Spiral Coherence Window Hypothesis (SCWH) interprets neural disorders as <strong>coherence failures</strong> within bounded attractor regions that coordinate enzymatic rhythms, synaptic oscillations and large-scale networks.</p> <p>The visual system is uniquely suited to reveal early coherence changes because:</p> <ul> <li> <p>the <strong>retina</strong> is anatomically part of the brain,</p> </li> <li> <p>the <strong>iris–pupil system</strong> is tightly coupled to autonomous and cortical regulation,</p> </li> <li> <p>visual processing is inherently <strong>pattern- and rhythm-sensitive</strong>.</p> </li> </ul> <p>SCWH-Vision posits that the eye provides a <strong>direct, non-invasive projection</strong> of spiral coherence dynamics and their breakdown.</p>
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spellingShingle SCWH-Vision Ocular Markers of Spiral Coherence Window Collapse A Cross-Scale Framework for Iris Dynamics, Retinal Oscillations and Early Neural Instability
Garbar, Iryna
spiral coherence, ocular coherence windows, iris dynamics, pupillary microdynamics, retinal oscillations, microsaccades, neural coherence, phase synchrony, visual instability, cross-scale attractors, traveling waves, nonlinear dynamics
<p>SCWH-Vision extends the Spiral Coherence Window Hypothesis (SCWH) to the human visual system, proposing that the <strong>eyes act as an early, accessible interface</strong> to underlying neural coherence dynamics.<br>The framework introduces the concept of <strong>ocular coherence windows</strong> – periods and spatial zones in which iris dynamics, ciliary muscle rhythms and retinal oscillations remain phase-stable and spiral-organized.</p> <p>SCWH-Vision suggests that:</p> <ol> <li> <p><strong>Enzymatic and metabolic dysrhythmia</strong> in ocular tissues (retina, ciliary body, iris) precede global neural instability.</p> </li> <li> <p><strong>Pupil behavior, microsaccades, accommodation patterns and contrast handling</strong> are sensitive markers of spiral coherence window drift.</p> </li> <li> <p>Early collapse of ocular coherence windows manifests as subtle visual instability long before overt cognitive symptoms arise.</p> </li> </ol> <p>The model does not propose diagnostic or therapeutic claims.<br>It offers an analytical and conceptual framework, linking SCWH to concrete, observable visual phenomena and motivating research on ocular markers of cross-scale coherence collapse.</p> <h3>2. Introduction</h3> <p>The Spiral Coherence Window Hypothesis (SCWH) interprets neural disorders as <strong>coherence failures</strong> within bounded attractor regions that coordinate enzymatic rhythms, synaptic oscillations and large-scale networks.</p> <p>The visual system is uniquely suited to reveal early coherence changes because:</p> <ul> <li> <p>the <strong>retina</strong> is anatomically part of the brain,</p> </li> <li> <p>the <strong>iris–pupil system</strong> is tightly coupled to autonomous and cortical regulation,</p> </li> <li> <p>visual processing is inherently <strong>pattern- and rhythm-sensitive</strong>.</p> </li> </ul> <p>SCWH-Vision posits that the eye provides a <strong>direct, non-invasive projection</strong> of spiral coherence dynamics and their breakdown.</p>
title SCWH-Vision Ocular Markers of Spiral Coherence Window Collapse A Cross-Scale Framework for Iris Dynamics, Retinal Oscillations and Early Neural Instability
topic spiral coherence, ocular coherence windows, iris dynamics, pupillary microdynamics, retinal oscillations, microsaccades, neural coherence, phase synchrony, visual instability, cross-scale attractors, traveling waves, nonlinear dynamics
url https://doi.org/10.5281/zenodo.17873220