Unified Framework for Quantum Resource Recycling via Instrument-Dependent Back-action

Fuente: arXiv
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Autori principali: Cai, Zinuo, Song, Jianxin, Ren, Changliang
Natura: Preprint
Pubblicazione: 2026
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author Cai, Zinuo
Song, Jianxin
Ren, Changliang
author_facet Cai, Zinuo
Song, Jianxin
Ren, Changliang
contents Accurate characterization of measurement backaction is crucial for understanding the limits of reusing quantum correlations in sequential scenarios. Here, we develop a unified quantum-instrument framework that goes beyond simple measurement statistics, explicitly attributing correlation sharing to Kraus-structure-dependent backaction. By tracing operational differences to this underlying physical mechanism, our framework integrates previously disparate strategies. Within this formulation, we derive general conditions for unbounded unilateral nonlocality sharing across arbitrarily many observers. The framework further reveals that Bell nonlocality remains shareable in bilateral sequential scenarios. These results establish quantum instruments, rather than POVMs alone, as the fundamental constraints on correlation sharing, providing a unified conceptual framework for quantum resource recycling.
format Preprint
id arxiv_https___arxiv_org_abs_2605_03513
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Unified Framework for Quantum Resource Recycling via Instrument-Dependent Back-action
Cai, Zinuo
Song, Jianxin
Ren, Changliang
Quantum Physics
Accurate characterization of measurement backaction is crucial for understanding the limits of reusing quantum correlations in sequential scenarios. Here, we develop a unified quantum-instrument framework that goes beyond simple measurement statistics, explicitly attributing correlation sharing to Kraus-structure-dependent backaction. By tracing operational differences to this underlying physical mechanism, our framework integrates previously disparate strategies. Within this formulation, we derive general conditions for unbounded unilateral nonlocality sharing across arbitrarily many observers. The framework further reveals that Bell nonlocality remains shareable in bilateral sequential scenarios. These results establish quantum instruments, rather than POVMs alone, as the fundamental constraints on correlation sharing, providing a unified conceptual framework for quantum resource recycling.
title Unified Framework for Quantum Resource Recycling via Instrument-Dependent Back-action
topic Quantum Physics
url https://arxiv.org/abs/2605.03513