Published May 31, 2015 | Version Submitted
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Universally Valid Error-Disturbance Relations in Continuous Measurements

Abstract

In quantum physics, measurement error and disturbance were first naively thought to be simply constrained by the Heisenberg uncertainty relation. Later, more rigorous analysis showed that the error and disturbance satisfy more subtle inequalities. Several versions of universally valid error-disturbance relations (EDR) have already been obtained and experimentally verified in the regimes where naive applications of the Heisenberg uncertainty relation failed. However, these EDRs were formulated for discrete measurements. In this paper, we consider continuous measurement processes and obtain new EDR inequalities in the Fourier space: in terms of the power spectra of the system and probe variables. By applying our EDRs to a linear optomechanical system, we confirm that a tradeoff relation between error and disturbance leads to the existence of an optimal strength of the disturbance in a joint measurement. Interestingly, even with this optimal case, the inequality of the new EDR is not saturated because of doublely existing standard quantum limits in the inequality.

Additional Information

The authors would like to thanks to Yiqiu Ma and Huan Yang for valuable discussions. A.N. is supported by JSPS Postdoctoral Fellowships for Research Abroad. Y.C. is supported by NSF grant PHY-1404569 and CAREER Grant PHY-0956189.

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Identifiers

Eprint ID
69088
Resolver ID
CaltechAUTHORS:20160718-094444675

Related works

Funding

Japan Society for the Promotion of Science (JSPS)
NSF
PHY-1404569
NSF
PHY-0956189

Dates

Created
2016-07-27
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Updated
2023-06-02
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