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On the Foundational Assumptions of Modern Physics

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Questioning the Foundations of Physics

Part of the book series: The Frontiers Collection ((FRONTCOLL))

Abstract

General relativity and the standard model of particle physics remain our most fundamental physical theories enjoying robust experimental confirmation. The foundational assumptions of physics changed rapidly during the early development of these theories, but the subsequent challenges of their refinement and the exploitation of their explanatory power turned attention away from foundational issues. Deep problems and anomalous observations remain unaddressed. New theories such as string theory seek to resolve these issues, but are presently untested. In this essay, I evaluate the foundational assumptions of modern physics and propose new physical principles. I reject the notion that spacetime is a manifold, the existence of static background structure in the universe, the symmetry interpretation of covariance, and a number of related assumptions. The central new principle I propose is the causal metric hypothesis, which characterizes the observed properties of the physical universe as manifestations of causal structure. More precisely, the classical causal metric hypothesis states that the metric properties of classical spacetime arise from a binary relation on a set, representing direct influences between pairs of events. Rafael Sorkin’s maxim, “order plus number equals geometry” is a special case. The quantum causal metric hypothesis states that the phases associated with directed paths in causal configuration space, under Feynman’s sum-over-histories approach to quantum theory, are determined by the causal structures of their constituent universes. The resulting approach to fundamental physics is called quantum causal theory.

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References

  1. K. Becker, M. Becker, J. Schwarz, String Theory and M-Theory: A Modern Introduction(Cambridge University Press, Cambridge, 2007)

    Google Scholar 

  2. T. Theimann, Modern Canonical Quantum General Relativity. Cambridge Monographs on Mathematical Physics (Cambridge University Press, Cambridge, 2007)

    Google Scholar 

  3. A. Connes, Noncommutative Geometry (InterEditions, Paris, 1990). English version of Géométrie non commutative

    MATH  Google Scholar 

  4. E. Verlinde, On the origin of gravity and the laws of Newton. J. High Energy Phys. 2011, 29 (2011)

    Article  MathSciNet  Google Scholar 

  5. R. Sorkin, Light, links and causal sets. J. Phys. Conf. Ser. 174, 012018 (2009)

    Article  ADS  Google Scholar 

  6. J. Maldacena, The large \(N\) limit of superconformal field theories and supergravity. Int. J. Theor. Phys. 38(4), 1113–1133 (1999)

    Article  MATH  MathSciNet  Google Scholar 

  7. A. Connes, M. Marcolli, Noncommutative Geometry, Quantum Fields and Motives (Colloquium Publications, 2007)

    Google Scholar 

  8. E. Frenkel, Lectures on the Langlands Program and Conformal Field Theory (Springer, Berlin, 2005). (Based on lectures given by the author at the DARPA workshop “Langlands Program and Physics” at the Institute for Advanced Study, March 2004)

    Google Scholar 

  9. R.P. Feynman, Space-time approach to non-relativistic quantum mechanics. Rev. Mod. Phys. 20, 367 (1948)

    Article  ADS  MathSciNet  Google Scholar 

  10. S.W. Hawking, A.R. King, P.J. McCarthy, A new topology for curved space-time which incorporates the causal, differential, and conformal structures. J. Math. Phys. 17(2), 174–181 (1976)

    Article  ADS  MATH  MathSciNet  Google Scholar 

  11. D.B. Malament, The class of continuous timelike curves determines the topology of spacetime. J. Math. Phys. 18(7), 1399–1404 (1977)

    Article  ADS  MATH  MathSciNet  Google Scholar 

  12. B.F. Dribus, On the axioms of causal set theory. Preprint. arXiv: http://arxiv-web3.library.cornell.edu/pdf/1311.2148v3.pdf

  13. D. Rideout, R. Sorkin, Classical sequential growth dynamics for causal sets. Phys. Rev. D61(2), 024002 (2000)

    ADS  MathSciNet  Google Scholar 

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Correspondence to Benjamin F. Dribus .

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Dribus, B.F. (2015). On the Foundational Assumptions of Modern Physics. In: Aguirre, A., Foster, B., Merali, Z. (eds) Questioning the Foundations of Physics. The Frontiers Collection. Springer, Cham. https://doi.org/10.1007/978-3-319-13045-3_4

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