quantum physics

Converting Quantum Sensing Noise into Erasures

arXiv:2607.26502

summary

The paper introduces a passive scheme that converts certain quantum sensing noise into erasures, enabling robust sensing without detailed noise knowledge, and demonstrates the method experimentally with single-photon phase sensing using orbital angular momentum as an ancilla.

Abstract

Erasures are more favorable for quantum sensing than unflagged errors such as Pauli errors. However, realistic sensing noise does not usually appear as erasures; it often acts within the same sensing Hilbert space as the signal, making it difficult to identify and mitigate. For such noise, we establish a noise-model-agnostic necessary and sufficient condition for erasure conversion, identifying the noise components that can be converted into erasures and removed without damaging the signal. For components satisfying the condition, conversion can be realized by a passive dimension-lifted scheme requiring neither detailed noise knowledge nor active control. Theoretically, the protocol remains effective over a broad range of noise strengths and approaches the corresponding precision limit. Experimentally, in single-photon phase sensing, we recover standard-quantum-limit precision in a Pauli-noise channel with erasure-convertible weight 0.5, using orbital angular momentum as the ancilla. These results provide a practical route to robust quantum sensing under realistic noise.

Topics & keywords

#quantum sensing#error mitigation#erasure conversion#noise modeling#single-photon#orbital angular momentumerasure conversionPauli noisedimension-lifted schemestandard quantum limitancilla