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Measurement of qubits

Physical Review A · 2001 · Vol. 64(5)
Daniel F. V. JamesPaul G. KwiatWilliam J. MunroA. G. White

Abstract

We describe in detail the theory underpinning the measurement of density matrices of a pair of quantum two-level systems (``qubits''). Our particular emphasis is on qubits realized by the two polarization degrees of freedom of a pair of entangled photons generated in a down-conversion experiment; however, the discussion applies in general, regardless of the actual physical realization. Two techniques are discussed, namely, a tomographic reconstruction (in which the density matrix is linearly related to a set of measured quantities) and a maximum likelihood technique which requires numerical optimization (but has the advantage of producing density matrices that are always non-negative definite). In addition, a detailed error analysis is presented, allowing errors in quantities derived from the density matrix, such as the entropy or entanglement of formation, to be estimated. Examples based on down-conversion experiments are used to illustrate our results.

Quantum Information and CryptographyQuantum Mechanics and ApplicationsAdvanced Thermodynamics and Statistical MechanicsQubitQuantum entanglementRealization (probability)Degrees of freedom (physics and chemistry)Density matrixStatistical physicsPhotonEntropy (arrow of time)Quantum tomographyPolarization (electrochemistry)
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2,100
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35.11
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Physical Review A · 2000 · 2,568 citations
Ultrabright source of polarization-entangled photons
Physical Review A · 1999 · 1,107 citations
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