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Research PaperResearchia:202602.20087

Quantum Estimation Theory Limits in Neutrino Oscillation Experiments

Claudia Frugiuele

Abstract

Measurements of the Pontecorvo-Maki-Nakagawa-Sakata (PMNS) neutrino mixing parameters have entered a precision era, enabling increasingly stringent tests of neutrino oscillations. Within the framework of quantum estimation theory, we investigate whether flavor measurements, the only observables currently accessible experimentally, are optimal for extracting the oscillation parameters. We compute the Quantum Fisher Information (QFI) and the classical Fisher Information (FI) associated with ideal ...

Submitted: February 20, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

Measurements of the Pontecorvo-Maki-Nakagawa-Sakata (PMNS) neutrino mixing parameters have entered a precision era, enabling increasingly stringent tests of neutrino oscillations. Within the framework of quantum estimation theory, we investigate whether flavor measurements, the only observables currently accessible experimentally, are optimal for extracting the oscillation parameters. We compute the Quantum Fisher Information (QFI) and the classical Fisher Information (FI) associated with ideal flavor projections for all oscillation parameters, considering accelerator muon (anti)neutrino and reactor electron antineutrino beams propagating in vacuum. Two main results emerge. First, flavor measurements saturate the QFI at the first oscillation maximum for θ13θ_{13}, θ23θ_{23}, and θ12θ_{12}, demonstrating their information-theoretic optimality for these parameters. In contrast, they are far from optimal for δCPδ_{CP}. In particular, only a small fraction of the available information on δCPδ_{CP} is extracted at the first maximum; the sensitivity improves at the second maximum, in line with the strategy of ESSννSB, a planned facility. Second, the QFI associated with δCPδ_{CP} is approximately one order of magnitude smaller than that of the mixing angles, indicating that the neutrino state intrinsically encodes less information about CP violation. Nevertheless, this quantum bound lies well below current experimental uncertainties, implying that the present precision on δCPδ_{CP} is not fundamentally limited. Our results provide a quantitative framework to disentangle fundamental from practical limitations and establish a benchmark for optimizing future neutrino facilities.


Source: arXiv:2602.16534v1 - http://arxiv.org/abs/2602.16534v1 PDF: https://arxiv.org/pdf/2602.16534v1 Original Link: http://arxiv.org/abs/2602.16534v1

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Date:
Feb 20, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
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