Error mitigation in quantum metrology via zero noise extrapolation
- URL: http://arxiv.org/abs/2101.03766v2
- Date: Thu, 14 Jan 2021 07:42:57 GMT
- Title: Error mitigation in quantum metrology via zero noise extrapolation
- Authors: Zhuo Zhao and Kok Chuan Tan
- Abstract summary: We consider Zero Noise Extrapolation (ZNE) as an error mitigation strategy in quantum metrology.
ZNE can be an effective, resource efficient error mitigation alternative when strategies employing full quantum error correcting codes are unavailable.
- Score: 1.044291921757248
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: We consider Zero Noise Extrapolation (ZNE) as an error mitigation strategy in
quantum metrology. It is shown that noise expansion can be systematically
performed over sufficiently short time scales for general Markovian noise
models described by the time homogeneous Lindblad master equation. This
suggests that ZNE can be an effective, resource efficient error mitigation
alternative when strategies employing full quantum error correcting codes are
unavailable. The ZNE method is then applied quantum phase estimation in a
Mach-Zehnder interferometer subject to photon losses. Numerical simulations
show a significant recovery of measurement sensitivity by employing first order
ZNE corrections, which can be further improved upon using higher order
corrections at the cost of additional measurements.
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