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Communication Closure Fields and the Temporal Feed Hypothesis

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Zenodo2025-10-03 更新2026-05-26 收录
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Description: This project explores the emerging framework that communication is the primary conserved quantity in physical systems — one that requires no intrinsic energy to persist but instead feeds exclusively on the passage of time. Under this view, communication is not an emergent property of matter and energy, but their precondition: it is the structured compatibility between dual state-fields (expansion vs. contraction, presence vs. absence, potential vs. redundancy) that allows any system to evolve. A key hypothesis investigated here is that communication is inherently free for the system itself, but its growth and organization demand time as a filter. As the rate of communication increases, the system becomes progressively more chaotic — reflecting a fundamental trade-off between speed and stability. This dynamic explains why everything from molecular reactions to social systems exhibits the same “speed–accuracy” constraint: time is the cost of coherence. The dataset includes: Abstract closure-field visualizations derived from π and (4 − π) duals, showing where expansion and contraction fields balance, circulate, or diverge. Divergence and curl maps that identify closure basins — zones where communication loops persist without anomaly consumption. A physical analog simulation using gravitational attraction and pressure gradients, demonstrating how real systems naturally form balance corridors and stable loop regions under the same mathematical structure. Together, these results support the Temporal Feed Hypothesis: communication’s persistence requires no external fuel, only the irreversible flow of time; and when time and gravity — the two universal filters — intersect, anomalies emerge that drive complexity. The work suggests that mass, energy, motion, and even entropy may be secondary projections of this deeper conservation law.

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Zenodo
创建时间:
2025-10-03
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