论文标题

量化量子因果影响

Quantifying Quantum Causal Influences

论文作者

Hutter, Lucas, Chaves, Rafael, Nery, Ranieri, Moreno, George, Brod, Daniel J.

论文摘要

因果影响是任何经验科学的核心,其量化与因果关系和应用的数学理论至关重要的原因。然而,量子相关性挑战了我们的因果关系的概念,这意味着在存在量子效应的情况下,必须对经典世界的工具和概念发展起来。在这里,我们提出了最常见的因果关系量词的量子版本,平均因果效应(ACE),测量了目标量子系统通过其假定原因而改变了多少目标。它不仅提供了一种先天的方式来量化两分门的因果关系,而且还提供了诸如基于测量的量子版本之类的替代量子计算模型,这表明因果关系可以用作优化量子算法的代理。考虑到量子传送,我们表明,与可分离状态相比,任何纯净的状态在因果效应方面都具有优势。不同用途的这种广泛性展示了,就像在经典案例中一样,因果影响的量化具有基本和应用的后果,并且可以导致一种完全未开发的量子信息科学工具。

Causal influences are at the core of any empirical science, the reason why its quantification is of paramount relevance for the mathematical theory of causality and applications. Quantum correlations, however, challenge our notion of cause and effect, implying that tools and concepts developed over the years having in mind a classical world, have to be reevaluated in the presence of quantum effects. Here, we propose the quantum version of the most common causality quantifier, the average causal effect (ACE), measuring how much a target quantum system is changed by interventions on its presumed cause. Not only it offers an innate manner to quantify causation in two-qubit gates but also in alternative quantum computation models such as the measurement-based version, suggesting that causality can be used as a proxy for optimizing quantum algorithms. Considering quantum teleportation, we show that any pure entangled state offers an advantage in terms of causal effects as compared to separable states. This broadness of different uses showcases that, just as in the classical case, the quantification of causal influence has foundational and applied consequences and can lead to a yet totally unexplored tool for quantum information science.

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