(Quantum) reference frames, relational observables, gauge reduction and physical interpretation
Thomas Thiemann

TL;DR
This paper explores the conceptual and technical challenges of defining and quantifying relational reference frames and observables in gauge theories like General Relativity, especially upon quantisation, to improve physical interpretation.
Contribution
It introduces a general framework for relational reference frame transformations and addresses key questions about gauge reduction and quantisation in a non-perturbative setting.
Findings
Derived a general formula for relational reference frame transformations
Analyzed how gauge reduction interacts with quantisation processes
Explored the interpretation of relational observables in quantum gauge systems
Abstract
It is mandatory to know how to operationally define and translate a reference frame into mathematics, in order that a physical interpretation of theory calculations in terms of observational data is possible. The situation is particularly challenging for gauge systems such as General Relativity where spacetime coordinates are subject to spacetime diffeomorphisms considered as gauge transformations turning coordinates into non-observables. This motivates the idea of operationally defined (material) reference frames which specify coordinates in terms of matter or geometry reference fields leading to the concept of relational observables, relational reference frames and gauge reduction. Upon quantisation, all fields become operator valued distributions. Now new conceptual and technical questions arise such as: Should one reduce before or after quantisation and how are the reference fields…
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Taxonomy
TopicsRelativity and Gravitational Theory · Quantum Mechanics and Applications · Quantum and Classical Electrodynamics
