Informationally Complete Distributed Metrology Without a Shared Reference Frame
arXiv:2601.06393 · doi:10.1038/s41467-025-67771-9
Abstract
In quantum information processing, implementing arbitrary preparations and measurements on qubits necessitates precise information to identify a specific reference frame (RF). In space quantum communication and sensing, where a shared RF is absent, the interplay between locality and symmetry imposes fundamental restrictions on physical systems. A restriction on realizable unitary operations results in a no-go theorem prohibiting the extraction of locally encoded information in RF-independent distributed metrology. Here, we propose a reversed-encoding method applied to two copies of local-unitary-invariant network states. This approach circumvents the no-go theorem while simultaneously mitigating decoherence-like noise caused by RF misalignment, thereby enabling the complete recovery of the quantum Fisher information (QFI). Furthermore, we confirm local Bell-state measurements as an optimal strategy to saturate the QFI. Our findings pave the way for the field application of distributed quantum sensing, which is inherently subject to unknown RF misalignment and was previously precluded by the no-go theorem.
8 pages, 5 figures
References in corpus (32)
- Advances in Quantum Metrology
- Quantum-enhanced measurements: beating the standard quantum limit
- Quantum metrology
- Quantum metrology with nonclassical states of atomic ensembles
- General framework for estimating the ultimate precision limit in noisy quantum-enhanced metrology
- Reference frames, superselection rules, and quantum information
- Quantum metrology from a quantum information science perspective
- Advances in Photonic Quantum Sensing
- The elusive Heisenberg limit in quantum enhanced metrology
- A quantum network of clocks
- Probing entanglement entropy via randomized measurements
- Quantum enhanced measurements without entanglement
- The randomized measurement toolbox
- Multi-parameter estimation in networked quantum sensors
- Improved quantum metrology using quantum error-correction
- Quantum Error Correction for Metrology
- Achieving the Heisenberg limit in quantum metrology using quantum error correction
- Distributed Quantum Metrology and the Entangling Power of Linear Networks
- Increasing sensing resolution with error correction
- Quantum optical technologies for metrology, sensing and imaging
- Quantum metrology for a general Hamiltonian parameter
- Statistical correlations between locally randomized measurements: a toolbox for probing entanglement in many-body quantum states
- Sensitivity Bounds for Multiparameter Quantum Metrology
- Distributed quantum phase estimation with entangled photons
- Cross-Platform Verification of Intermediate Scale Quantum Devices
- Distributed quantum sensing with a mode-entangled network of spin-squeezed atomic states
- Restrictions on realizable unitary operations imposed by symmetry and locality
- Quantum Fisher information and symmetric logarithmic derivative via anti-commutators
- Quantum metrology with imperfect measurements
- Quantum operations with indefinite time direction
- Quantum-enhanced metrology with network states
- Experimental demonstration of input-output indefiniteness in a single quantum device