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Quantum fields and local measurements

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arxiv 1810.06512 v3 pith:CC2TCDVF submitted 2018-10-15 math-ph gr-qcmath.MPquant-ph

classification math-phgr-qcmath.MPquant-ph
keywords probesystemcouplingobservablesmeasurementregiontheorycausally
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The measurement process is considered for quantum field theory on curved spacetimes. Measurements are carried out on one QFT, the "system", using another, the "probe" via a dynamical coupling of "system" and "probe" in a bounded spacetime region. The resulting "coupled theory" determines a scattering map on the uncoupled combination of the "system" and "probe" by reference to natural "in" and "out" spacetime regions. No specific interaction is assumed and all constructions are local and covariant. Given any initial probe state in the "in" region, the scattering map determines a completely positive map from "probe" observables in the "out" region to "induced system observables", thus providing a measurement scheme for the latter. It is shown that the induced system observables may be localized in the causal hull of the interaction coupling region and are typically less sharp than the probe observable, but more sharp than the actual measurement on the coupled theory. Post-selected states conditioned on measurement outcomes are obtained using Davies-Lewis instruments. Composite measurements involving causally ordered coupling regions are also considered. Provided that the scattering map obeys a causal factorization property, the causally ordered composition of the individual instruments coincides with the composite instrument; in particular, the instruments may be combined in either order if the coupling regions are causally disjoint. This is the central consistency property of the proposed framework. The general concepts and results are illustrated by an example in which both "system" and "probe" are quantized linear scalar fields, coupled by a quadratic interaction term with compact spacetime support. System observables induced by simple probe observables are calculated exactly, for sufficiently weak coupling, and compared with first order perturbation theory.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Measurement and preparation protocols for quantum field theory on curved spacetimes

    gr-qc 2025-08 conditional novelty 8.0 of 10

    All local observables of the real Klein-Gordon field can be measured by compactly coupled probes, and arbitrary given Hadamard states can be prepared as uncorrelated local product states.

  2. Measurements in stochastic gravity and thermal variance

    gr-qc 2025-06 conditional novelty 6.0 of 10

    Thermal photon fluctuations in a curved spacetime generate metric variance that, in the Fewster-Verch measurement scheme, equals the stochastic gravity noise kernel exactly.

  3. Towards relational foundations for spacetime quantum physics

    quant-ph 2025-06 conditional novelty 6.0 of 10

    The paper postulates that in quantum field theory, an observer can only extract finite relational information from a quantum event, which forces a Wilsonian scale-dependent description of spacetime quantum physics.

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