Impossibility of superluminal signalling in Minkowski space-time does not rule out causal loops
V. Vilasini, Roger Colbeck

TL;DR
This paper demonstrates that forbidding superluminal signalling alone does not eliminate the possibility of causal loops in Minkowski space-time, challenging assumptions about causality constraints in relativistic physics.
Contribution
It introduces a framework showing that superluminal causation and causal loops can exist without superluminal signalling in Minkowski space-time.
Findings
Superluminal causation can occur without superluminal signalling.
Causal loops can be embedded in Minkowski space-time without signalling violations.
The possibility of causal loops depends on the spatial dimensions.
Abstract
Causality is fundamental to science, but it appears in several different forms. One is relativistic causality, which is tied to a space-time structure and forbids signalling outside the future. A second is an operational notion of causation that considers the flow of information between physical systems and interventions on them. In [Vilasini and Colbeck, Phys. Rev. A. 106, 032204 (2022)], we propose a framework for characterising when a causal model can coexist with relativistic principles such as no superluminal signalling, while allowing for cyclic and non-classical causal influences and the possibility of causation without signalling. In a theory without superluminal causation, both superluminal signalling and causal loops are not possible in Minkowski space-time. Here we demonstrate that if we only forbid superluminal signalling, superluminal causation remains possible and show the…
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Taxonomy
TopicsQuantum Mechanics and Applications · Quantum optics and atomic interactions · Noncommutative and Quantum Gravity Theories
