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Physical Probability and Locality in no-collapse quantum theory

Abstract:
Probability is distinguished into two kinds: physical and epistemic, also, but less accurately, called objective and subjective. Simple postulates are given for physical probability, the only novel one being a locality condition. Translated into no-collapse quantum mechanics, without hidden variables, the postulates imply that the elements in any equiamplitude expansion of the quantum state are equiprobable. Such expansions therefore provide ensembles of microstates that can be used to define probabilities in the manner of frequentism, in von Mises’ sense (where the probability of P is the frequency of occurrence of P in a suitable ensemble). The result is the Born rule. Since satisfying our postulates, and in particular the locality condition (meaning no action-at-a-distance), these probabilities for no-collapse quantum mechanics are perfectly local, even though they violate Bell inequalities. The latter can be traced to a violation of outcome independence, used to derive the inequalities. But in no-collapse theory it is not a locality condition; it is a criterion for entanglement, not locality.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1088/1742-6596/3017/1/012005

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Institution:
University of Oxford
Oxford college:
Merton College
Role:
Author


Publisher:
IOP Publishing
Journal:
Journal of Physics: Conference Series More from this journal
Volume:
3017
Issue:
1
Article number:
012005
Publication date:
2025-06-01
DOI:
EISSN:
1742-6596
ISSN:
1742-6588


Language:
English
Pubs id:
2241270
Local pid:
pubs:2241270
Source identifiers:
3037750
Deposit date:
2025-06-19
ARK identifier:
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