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The spatiotemporal doubled density operator: a unified framework for analyzing spatial and temporal quantum processes
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The measurement statistics for spatial and temporal quantum processes are produced through distinct mechanisms. Measurements that are space-like separated exhibit non-signaling behavior. However, time-like separated measurements can only result in one-way non-signaling, as the past is independent of the future, but the opposite is not true. This work presents the doubled density operator as a comprehensive framework for studying quantum processes in space-time. It effectively captures all the physical information of the process, with the measurement and Born rule showing uniformity for both spatial and temporal cases. We demonstrate that the equal-time density operator can be derived by performing a partial trace operation on the doubled density operator. Furthermore, the temporality of the quantum process can be detected by conducting a partial trace operation on either the left or right half of the doubled density operator.
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Cited by 2 Pith papers
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Temporal Kirkwood-Dirac Quasiprobability Distribution and Unification of Temporal State Formalisms through Temporal Bloch Tomography
A generalized Kirkwood–Dirac distribution for multi-time processes unifies pseudo-density operators, doubled density operators, and related temporal state formalisms via temporal Bloch tomography.
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Detecting and quantifying non-Markovianity via quantum direct cause
Pseudo-density-matrix measures detect eternal CP-indivisibility that temporal steering, trace distance, and entropic measures miss, and a new continuous-time causality measure generalizes the Rivas-Huelga-Plenio witness.
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