Event-Dependent Physical Records in Open Systems: Accessibility, Reconstruction, and Control

An event occurs and passes. What remains is physical: the surrounding domain evolves differently from how it would have evolved had the event not occurred. That difference—not a symbol or a measurement outcome—is taken here as the primitive object and called an event-dependent physical record. Our central result is that a record can persist exactly while ceasing to be detectable. We exhibit a unitary evolution in which the record's norm is conserved and its spectral modulus remains unchanged at every frequency, yet its projection onto any fixed finite-rank detector falls below every prescribed detection threshold in finite time, with an explicit upper bound on the operational lifetime. Physical persistence and operational accessibility are therefore logically independent properties. Three further results follow. First, persistence is shown to be a consequence of reversibility rather than a postulate. Second, physical distinctness, detectability, and reconstructibility form a strictly nested hierarchy, with counterexamples to both converse implications. Third, for a Gaussian coordinate, the predictive content recoverable from a given observation channel is bounded by the channel's mutual information, independently of the reconstruction algorithm and the control law.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-25
DOI
https://doi.org/10.5281/zenodo.22948502
Primary Topic
Wireless Communication Security Techniques
Type
preprint
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preprint

Event-Dependent Physical Records in Open Systems: Accessibility, Reconstruction, and Control

Philip Rey
Zenodo (CERN European Organization for Nuclear Research)
Wireless Communication Security Techniques
preprint

Event-Dependent Physical Records in Open Systems: Accessibility, Reconstruction, and Control

Philip Rey
preprint en

Abstract

An event occurs and passes. What remains is physical: the surrounding domain evolves differently from how it would have evolved had the event not occurred. That difference—not a symbol or a measurement outcome—is taken here as the primitive object and called an event-dependent physical record. Our central result is that a record can persist exactly while ceasing to be detectable. We exhibit a unitary evolution in which the record's norm is conserved and its spectral modulus remains unchanged at every frequency, yet its projection onto any fixed finite-rank detector falls below every prescribed detection threshold in finite time, with an explicit upper bound on the operational lifetime. Physical persistence and operational accessibility are therefore logically independent properties. Three further results follow. First, persistence is shown to be a consequence of reversibility rather than a postulate. Second, physical distinctness, detectability, and reconstructibility form a strictly nested hierarchy, with counterexamples to both converse implications. Third, for a Gaussian coordinate, the predictive content recoverable from a given observation channel is bounded by the channel's mutual information, independently of the reconstruction algorithm and the control law.

Zenodo (CERN European Organization for Nuclear Research)
Peace, Justice and strong institutions
Wireless Communication Security Techniques
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Event-Dependent Physical Records in Open Systems: Accessibility, Reconstruction, and Control — Philip Rey · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS