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The Coherence-Dispersion Sculpting Hypothesis: From Redness and Broccoli to a Testable Multiscale Account of Qualitative Experience

Micah Blumberg

Zenodo (CERN European Organization for Nuclear Research) July 29, 2026 DOI: 10.5281/zenodo.21683929 (opens in new tab)

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AI-extracted from the abstract
Characteristics Theoretical or philosophical paper Qualitative Peer reviewed
Key points Proposes that qualitative experience depends on learned, receiver-relative transformations across transduction, cellular output, recurrent neural arrays, and embodied action, with the observer being the distributed process itself rather than an inner spectator. Argues that locally coherent assemblies and structured phase dispersion, formalized via the "phase-wave differential" and the Coherence-Dispersion Sculpting Hypothesis, organize neural processing, and that neither maximal synchrony nor maximal entropy optimizes all content, access, self-model, report, or action endpoints.

Abstract

Why does red look different from green, or the taste and crunch of broccoli form one recognizable experience rather than an unstructured collection of neural events? Neuroscience can identify receptors, pathways, population responses, reports, and actions, but correlation at any one scale does not yet explain how the living network constructs a differentiated, multimodal state. This paper develops the Self Aware Networks (SAN) answer as a falsifiable multiscale hypothesis. A qualitative state is proposed to depend on learned, receiver-relative transformations that begin in modality-specific transduction, alter cellular output, recruit recurrent neural arrays, and change an embodied observer-action process. The observer is the distributed process itself; no inner spectator is added. The Coherence-Dispersion Sculpting Hypothesis (CDSH) supplies one organizing mechanism within this larger construction stack. Neural processing is proposed to depend on locally coherent assemblies, structured phase separation, inhibition, and consequential departures from an ongoing state. SAN calls a typed, receiver-relative departure a phase-wave differential (PWD). The term is introduced only after its ordinary-language function: it names a change in phase, frequency, magnitude, duration, transmission, or network context that a receiving biological system can detect and act upon. Coherence can recruit and bind; structured dispersion can separate, suppress, or preserve boundaries. Neither maximal synchrony nor one privileged frequency is predicted to encode experience. The broccoli case serves as a qualitative laboratory. Color, shape, texture, pressure, movement, crunch, smell, taste, expectation, and action are measured through different biological routes but learned as a recurrent property bundle. Redness isolates one visual property; umami traces chemical transduction; whisking demonstrates active sensorimotor sampling; ion-channel and action-potential dynamics constrain the molecular-to-synaptic bridge; and neural stimulation and sensory substitution define a bounded engineering question about reconstruction. The paper separates content identity from intensity, persistence, salience, reportability, and motor use. It formalizes local phase organization and a receiver-relative sculpting operator, proposes seven experiments, and states explicit falsification criteria. Seizure, hallucination, psychedelic, lucid-dream, out-of-body, resuscitation, and dying-brain evidence stress-test a non-monotonic dynamic-range prediction: neither maximal coherence nor maximal entropy is expected to optimize every content, access, self-model, report, or action endpoint. Established receptor, oscillation, plasticity, stimulation, and altered-state results are treated as components and constraints, not as proof that the joined SAN account is correct. Keywords: neural oscillations; phase synchrony; splay state; phase dispersion; spike-timing-dependent plasticity; LTP; LTD; neural tuning; phase-wave differential; neural rendering; predictive processing; Self Aware Networks ---