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March 29, 20260 citationsOpen Access

Time Without Temporal Measurement: Surrogate Parameters in Physical Theory

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JSJulian Severin

Key Points

  • This work aims to clarify the misrepresentation of time in physical theories by addressing how temporal measurements are derived.
  • Analyzes various physical theories: classical mechanics, relativity, quantum theory, thermodynamics, and cosmology.
  • Examines measurement procedures related to non-temporal quantities.
  • Introduces a surrogate parameter to distinguish empirical from formal temporal measures.
  • Demonstrates that values for time are derived from non-temporal physical quantities.
  • Identifies a systematic misrepresentation of temporal parameters in physics.
  • Clarifies the implications for claims of temporal universality and measurement transfer.

Abstract

Physical theories ubiquitously employ a parameter conventionally denoted t and labeled “time,” treating it as the measured temporal magnitude with respect to which change and dynamical evolution are expressed. This paper argues that this assumption is false. Across classical mechanics, relativity, quantum theory, thermodynamics, and cosmology, values assigned to t are obtained exclusively through the measurement of non-temporal physical quantities, including periodic motions, spacetime intervals, energy differences, entropy changes, and correlated state variables. No physical measurement procedure instantiates a temporal observable.The paper develops a measurement-theoretic diagnosis of this situation and introduces an explicit surrogate parameter to distinguish empirically instantiated quantities from the formal temporal parameter they are taken to represent. This distinction reveals a systematic semantic misrepresentation: temporal parameters in physical theory are treated as denoting measured time despite lacking temporal empirical anchoring. The result is not a failure of prediction or coordination, but a representational defect masked by the operational reliability of surrogate measurement.By disentangling formal role from empirical instantiation, the analysis clarifies why claims of temporal universality, cross-theoretic identification, and measurement transfer systematically fail in fundamental physics. The paper does not advance an ontology of time or propose a theoretical reconstruction. Its contribution is diagnostic: to restore representational accuracy by making explicit what physical measurement has in fact delivered and what it has not.Keywords: Time; Measurement; Representation; Surrogate measurement; Temporal parameters; Problem of Time

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Cite This Study

Julian Severin (2026) studied this question.

synapsesocial.com/papers/69c8c2fcde0f0f753b39d7dahttps://doi.org/10.5281/zenodo.19246778
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