Quantum Tomography with Phase Space Measurements
Schultz, Jussi (2012-09-08)
Quantum Tomography with Phase Space Measurements
Schultz, Jussi
(08.09.2012)
Turun yliopisto Annales Universitatis Turkuensis A I 441
Julkaisun pysyvä osoite on:
https://urn.fi/URN:ISBN:978-951-29-5082-9
https://urn.fi/URN:ISBN:978-951-29-5082-9
Kuvaus
Siirretty Doriasta
Tiivistelmä
This thesis addresses the use of covariant phase space observables in quantum
tomography. Necessary and sufficient conditions for the informational completeness
of covariant phase space observables are proved, and some state
reconstruction formulae are derived. Different measurement schemes for measuring
phase space observables are considered. Special emphasis is given to the
quantum optical eight-port homodyne detection scheme and, in particular, on
the effect of non-unit detector efficiencies on the measured observable. It is
shown that the informational completeness of the observable does not depend
on the efficiencies.
As a related problem, the possibility of reconstructing the position and
momentum distributions from the marginal statistics of a phase space observable
is considered. It is shown that informational completeness for the phase space
observable is neither necessary nor sufficient for this procedure. Two methods
for determining the distributions from the marginal statistics are presented.
Finally, two alternative methods for determining the state are considered.
Some of their shortcomings when compared to the phase space method are
discussed.
tomography. Necessary and sufficient conditions for the informational completeness
of covariant phase space observables are proved, and some state
reconstruction formulae are derived. Different measurement schemes for measuring
phase space observables are considered. Special emphasis is given to the
quantum optical eight-port homodyne detection scheme and, in particular, on
the effect of non-unit detector efficiencies on the measured observable. It is
shown that the informational completeness of the observable does not depend
on the efficiencies.
As a related problem, the possibility of reconstructing the position and
momentum distributions from the marginal statistics of a phase space observable
is considered. It is shown that informational completeness for the phase space
observable is neither necessary nor sufficient for this procedure. Two methods
for determining the distributions from the marginal statistics are presented.
Finally, two alternative methods for determining the state are considered.
Some of their shortcomings when compared to the phase space method are
discussed.
Kokoelmat
- Väitöskirjat [2894]