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Volumn 64, Issue 19, 2001, Pages

Correlated quantum measurement of a solid-state qubit

Author keywords

[No Author keywords available]

Indexed keywords

ARTICLE; CORRELATION FUNCTION; ELECTRON; MEASUREMENT; QUANTUM MECHANICS; SEMICONDUCTOR; SOLID STATE;

EID: 0035891421     PISSN: 10980121     EISSN: 1550235X     Source Type: Journal    
DOI: 10.1103/PhysRevB.64.193407     Document Type: Article
Times cited : (13)

References (41)
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  • 20
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    • H.-S. Goan et al., Phys. Rev. B 63, 125326 (2001)
    • H.-S. Goan et al., Phys. Rev. B 63, 125326 (2001).
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    • quant-ph/9808058 (unpublished)
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    • Gurvitz, S.A.1
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    • cond-mat/0002203 (unpublished)
    • A.N. Korotkov et al., cond-mat/0002203 (unpublished).
    • Korotkov, A.N.1
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    • cond-mat/0009163 (unpublished);
    • A.M. van den Brink, cond-mat/0009163 (unpublished);
    • van den Brink, A.M.1
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    • cond-mat/0010052 (unpublished)
    • D.V. Averin, cond-mat/0010052 (unpublished).
    • Averin, D.V.1
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    • cond-mat/0004364 (unpublished)
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    • B. Øksendal, Stochastic Differential Equations (Springer, Berlin, 1992)
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  • 41
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    • Somewhat extended conventional formalism (Ref. 25) can couple the qubit evolution and the number of electrons passed through the detector. However, this formalism still cannot predict (Formula presented) unless the sufficiently frequent collapse of the detector is taken into account explicitly. Such procedure leads to the Bayesian equations—see Ref. 19
    • Somewhat extended conventional formalism (Ref. 25) can couple the qubit evolution and the number of electrons passed through the detector. However, this formalism still cannot predict (Formula presented) unless the sufficiently frequent collapse of the detector is taken into account explicitly. Such procedure leads to the Bayesian equations—see Ref. 19.


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