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February 11, 20260 citationsOpen Access

Spacetime Imprint and Emergent Time: Observational and Quantum Tests of Spacetime Memory

AHalanbki hassan ali hassanAHalanbki taha ali hassan

Key Points

  • This research aims to explore the concept of spacetime memory and its implications for gravitational dynamics and quantum systems.
  • Developed a theoretical framework called Spacetime Imprint and Emergent Time (SIET).
  • Defined weak-field and cosmological limits of the proposed theory.
  • Tested gravitational hysteresis effect using SPARC galaxy rotation curve data.
  • Formulated observational predictions that can be tested in future experiments.
  • Identified statistically significant correlations between dynamical anomalies and historical interaction proxies.
  • Predicted measurable effects in areas such as gravitational lensing and wave memory.
  • Provided a testable alternative to dark matter using historical degrees of freedom.

Abstract

We present Spacetime Imprint and Emergent Time (SIET), a unified theoretical and observational framework in which spacetime possesses a physical memory of past dynamical events. In SIET, gravitational dynamics depend not only on the instantaneous baryonic mass distribution, but also on a spacetime memory field encoding the historical evolution of matter and interactions. Time is interpreted as an emergent parameter associated with the local rate of memory change, providing a natural bridge between classical and quantum regimes. We develop the full mathematical structure of the theory, define its weak-field and cosmological limits, and formulate explicit, falsifiable observational predictions. Using publicly available SPARC galaxy rotation curve data, we introduce and test a gravitational hysteresis effect, demonstrating statistically significant correlations between dynamical anomalies and proxies of interaction history. The framework further predicts measurable consequences in gravitational lensing, gravitational-wave memory, atomic clocks, quantum decoherence, and interferometric experiments. All symbols are consistently defined and rendered to ensure cross-platform reproducibility. SIET provides a testable alternative to dark matter interpretations by replacing unseen substances with historical degrees of freedom of spacetime itself.

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Cite This Study

hassan et al. (2026) studied this question.

synapsesocial.com/papers/698c1c73267fb587c655ee1ehttps://doi.org/10.5281/zenodo.18530927
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  1. 1Spacetime Imprint Theory: A Phenomenological Extension of General Relativity with Finite Memory2026
  2. 2Inferring Fundamental Spacetime Symmetries with Gravitational-Wave Memory: From LISA to the Einstein Telescope2024 · 37 citations
  3. 3Emergent Lorentzian Geometry from Quantum Criticality: Dynamic Signature Change via Relative Entropy Instability2026
  4. 4History-Dependent Gravity XI: Gravitational Wave Phase Drift from Finite Memory Kernel as Cross-Epoch Verification of Emergent Time2026
  5. 5Information-Emergent Spacetime Theory (IEST) v2.0: A Background-Independent Discrete Quantum Gravity Framework2026