Uncertainty limits for quantum metrology obtained from the statistics of weak measurements

Physical Review A Volume 83 Page 022106-1-022106-5 published_at 2011-02-22
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Title ( eng )
Uncertainty limits for quantum metrology obtained from the statistics of weak measurements
Creator
Hofmann Holger F
Source Title
Physical Review A
Volume 83
Start Page 022106-1
End Page 022106-5
Abstract
Quantum metrology uses small changes in the output probabilities of a quantum measurement to estimate the magnitude of a weak interaction with the system. The sensitivity of this procedure depends on the relation between the input state, the measurement results, and the generator observable describing the effect of the weak interaction on the system. This is similar to the situation in weak measurements, where the weak value of an observable exhibits a symmetric dependence on initial and final conditions. In this paper, it is shown that the phase sensitivity of a quantum measurement is in fact given by the variance of the imaginary parts of the weak values of the generator over the different measurement outcomes. It is then possible to include the limitations of a specific quantum measurement in the uncertainty bound for phase estimates by subtracting the variance of the real parts of the weak values from the initial generator uncertainty. This uncertainty relation can be interpreted as the time-symmetric formulation of the uncertainty limit of quantum metrology, where the real parts of the weak values represent the information about the generator observable in the final measurement result.
NDC
Physics [ 420 ]
Language
eng
Resource Type journal article
Publisher
American Physical Society
Date of Issued 2011-02-22
Rights
Copyright (c) 2011 American Physical Society.
Publish Type Version of Record
Access Rights open access
Source Identifier
[ISSN] 1050-2947
[DOI] 10.1103/PhysRevA.83.022106
[NCID] AA10764867
[DOI] http://dx.doi.org/10.1103/PhysRevA.83.022106