Branch-counting in the Everett interpretation of quantum mechanics

Author:

Saunders Simon1ORCID

Affiliation:

1. Faculty of Philosophy, Oxford University, Oxford OX2 6GG, UK

Abstract

A defence is offered of a version of the branch-counting rule in the Everett interpretation (otherwise known as many worlds interpretation) of quantum mechanics that both depends on the state and is continuous in the norm topology on Hilbert space. The well-known branch-counting rule, for realistic models of measurements, in which branches are defined by decoherence theory, fails this test. The new rule hinges on the use of decoherence theory in defining branching structure, and specifically decoherent histories theory. On this basis ratios of branch numbers are defined, free of any convention. They agree with the Born rule and deliver a notion of objective probability similar to naive frequentism, save that the frequencies of outcomes are not confined to a single world at different times, but spread over worlds at a single time. Nor is it ad hoc : it is recognizably akin to the combinatorial approach to thermodynamic probability, as introduced by Boltzmann in 1879. It is identical to the procedure followed by Planck, Bose, Einstein and Dirac in defining the equilibrium distribution of the Bose–Einstein gas. It also connects in a simple way with the decision-theory approach to quantum probability.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

Reference37 articles.

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2. Saunders S. 2005 What is probability? In Quo vadis quantum mechanics (eds A Elitzur, S Dolev, N Kolenda). Berlin, Germany: Springer-Verlag.

3. The Emergent Multiverse

4. Graham N. 1973 The measurement of relative frequency. In The many worlds interpretation of quantum mechanics (eds B DeWitt, N Graham). Princeton, NJ: Princeton University Press.

5. Gell-Mann M, Hartle JB. 1989 Quantum mechanics in the light of quantum cosmology. In Complexity, entropy, and the physics of information (ed. WH Zurek). Reading, MA: Addison-Wesley.

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