Conditional mutual information: A generalization of causal inference in quantum systems

Fuente: arXiv
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Main Author: Ghosh, Anupam
Format: Preprint
Published: 2025
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author Ghosh, Anupam
author_facet Ghosh, Anupam
contents The concept of causality is fundamental to numerous scientific explanations; however, its extension to the quantum regime has yet to be rigorously explored. This letter introduces the development of a quantum causal index, a novel extension of the classical causal inference framework, tailored to learn the causal relationships inherent in quantum systems. Our study focuses on the asymmetric quantum conditional mutual information (QCMI), incorporating the von Neumann entropy, as a directional metric of causal influence in quantum many-body systems. We analyze spin chains using the QCMI, implementing a projective measurement on one site as the intervention and monitoring its effect on a distant site conditioned on intermediate spins. Additionally, we study the effective causal propagation velocity, which is the speed at which QCMI becomes significant at distant sites. These findings indicate the presence of finite-speed propagation of causal influence, along with the emergence of coherent oscillations.
format Preprint
id arxiv_https___arxiv_org_abs_2508_12160
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Conditional mutual information: A generalization of causal inference in quantum systems
Ghosh, Anupam
Quantum Physics
Chaotic Dynamics
Applied Physics
Computational Physics
The concept of causality is fundamental to numerous scientific explanations; however, its extension to the quantum regime has yet to be rigorously explored. This letter introduces the development of a quantum causal index, a novel extension of the classical causal inference framework, tailored to learn the causal relationships inherent in quantum systems. Our study focuses on the asymmetric quantum conditional mutual information (QCMI), incorporating the von Neumann entropy, as a directional metric of causal influence in quantum many-body systems. We analyze spin chains using the QCMI, implementing a projective measurement on one site as the intervention and monitoring its effect on a distant site conditioned on intermediate spins. Additionally, we study the effective causal propagation velocity, which is the speed at which QCMI becomes significant at distant sites. These findings indicate the presence of finite-speed propagation of causal influence, along with the emergence of coherent oscillations.
title Conditional mutual information: A generalization of causal inference in quantum systems
topic Quantum Physics
Chaotic Dynamics
Applied Physics
Computational Physics
url https://arxiv.org/abs/2508.12160