Probability Theories with Dynamic Causal Structure: A New Framework for Quantum Gravity
Lucien Hardy

TL;DR
This paper introduces the causaloid framework, a novel probabilistic formalism for quantum gravity with dynamic causal structure, unifying quantum theory and general relativity without fixed backgrounds.
Contribution
It presents the causaloid formalism that captures causal information from data, enabling probability calculations without assuming fixed causal structure or background time.
Findings
Causaloid formalism can represent classical and quantum theories
The framework allows probability calculations from causal data
Potential to develop a quantum gravity theory using causaloids
Abstract
Quantum theory is a probabilistic theory with fixed causal structure. General relativity is a deterministic theory but where the causal structure is dynamic. It is reasonable to expect that quantum gravity will be a probabilistic theory with dynamic causal structure. The purpose of this paper is to present a framework for such a probability calculus. We define an operational notion of space-time, this being composed of elementary regions. Central to this formalism is an object we call the causaloid. This object captures information about causal structure implicit in the data by quantifying the way in which the number of measurements required to establish a state for a composite region is reduced when there is a causal connection between the component regions. This formalism puts all elementary regions on an equal footing. It does not require that we impose fixed causal structure. In…
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Taxonomy
TopicsQuantum Mechanics and Applications · Noncommutative and Quantum Gravity Theories · Cosmology and Gravitation Theories
