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闵可夫斯基时空中超光速信号传递的不可能性并不排除因果循环。

Impossibility of Superluminal Signaling in Minkowski Spacetime Does Not Rule Out Causal Loops.

作者信息

Vilasini V, Colbeck Roger

机构信息

Institute for Theoretical Physics, ETH Zurich, 8093 Zürich, Switzerland.

Department of Mathematics, University of York, Heslington, York YO10 5DD, United Kingdom.

出版信息

Phys Rev Lett. 2022 Sep 9;129(11):110401. doi: 10.1103/PhysRevLett.129.110401.

Abstract

Causality is fundamental to science, but it appears in several different forms. One is relativistic causality, which is tied to a spacetime structure and forbids signaling 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 [V. Vilasini and R. Colbeck, General framework for cyclic and fine-tuned causal models and their compatibility with space-time, Phys. Rev. A 106, 032204 (2022).PLRAAN2469-992610.1103/PhysRevA.106.032204], we propose a framework for characterizing when a causal model can coexist with relativistic principles such as no superluminal signaling, while allowing for cyclic and nonclassical causal influences and the possibility of causation without signaling. In a theory without superluminal causation, both superluminal signaling and causal loops are not possible in Minkowski spacetime. Here we demonstrate that if we only forbid superluminal signaling, superluminal causation remains possible and show the mathematical possibility of causal loops that can be embedded in a Minkowski spacetime without leading to superluminal signaling. The existence of such loops in the given spacetime could in principle be operationally verified using interventions. This establishes that the physical principle of no superluminal signaling is not by itself sufficient to rule out causal loops between Minkowski spacetime events. Interestingly, the conditions required to rule out causal loops in a spacetime depend on the dimension. Whether such loops are possible in three spatial dimensions remains an important open question.

摘要

因果关系是科学的基础,但它以几种不同的形式出现。一种是相对论因果关系,它与时空结构相关联,并禁止在未来之外进行信号传递。第二种是因果关系的操作概念,它考虑物理系统之间的信息流以及对它们的干预。在[V. 维拉萨尼和R. 科尔贝克,《循环和微调因果模型的通用框架及其与时空的兼容性》,《物理评论A》106, 032204 (2022年)。PLRAAN2469 - 992610.1103/PhysRevA.106.032204]中,我们提出了一个框架,用于描述因果模型何时可以与诸如无超光速信号传递等相对论原理共存,同时允许循环和非经典因果影响以及无信号传递的因果关系的可能性。在一个没有超光速因果关系的理论中,在闵可夫斯基时空中超光速信号传递和因果循环都是不可能的。在这里,我们证明,如果我们只禁止超光速信号传递,超光速因果关系仍然是可能的,并展示了可以嵌入闵可夫斯基时空而不会导致超光速信号传递的因果循环的数学可能性。在给定的时空中,这种循环的存在原则上可以通过干预进行操作验证。这表明无超光速信号传递的物理原理本身不足以排除闵可夫斯基时空事件之间的因果循环。有趣的是,排除时空中因果循环所需的条件取决于维度。在三个空间维度中这种循环是否可能仍然是一个重要的开放性问题。

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