Quantum Jeffreys prior for displaced squeezed thermal states
- 6 September 1999
- journal article
- Published by IOP Publishing in Journal of Physics A: General Physics
- Vol. 32 (37) , 6613-6618
- https://doi.org/10.1088/0305-4470/32/37/310
Abstract
It is known that, by extending the equivalence of the Fisher information matrix to its quantum version, the Bures metric, the quantum Jeffreys prior can be determined from the volume element of the Bures metric. We compute the Bures metric for the displaced squeezed thermal state and analyse the quantum Jeffreys prior and its marginal probability distributions. To normalize the marginal probability density function, it is necessary to provide a range of values of the squeezing parameter or the inverse temperature. We find that if the range of the squeezing parameter is kept narrow, there are significant differences in the marginal probability density functions in terms of the squeezing parameters for the displaced and undisplaced situations. However, these differences disappear as the range increases. Furthermore, marginal probability density functions against temperature are very different in the two cases.Keywords
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