2019
DOI: 10.3390/sym11030344
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Quasiprobability Distribution Functions from Fractional Fourier Transforms

Abstract: We show, in a formal way, how a class of complex quasiprobability distribution functions may be introduced by using the fractional Fourier transform. This leads to the Fresnel transform of a characteristic function instead of the usual Fourier transform. We end the manuscript by showing a way in which the distribution we are introducing may be reconstructed by using atom-field interactions.Recent studies have openned the possibility of measuring, instead of observables, non-Hermitian operators [18]. It would b… Show more

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Cited by 4 publications
(2 citation statements)
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“…If the two modes are initially uncorrelated, |𝜓 = 𝑛 𝑎 ,𝑛 𝑏 𝜓 𝑛 𝑎 𝜓 𝑛 𝑏 |𝑛 𝑎 , 𝑛 𝑏 , the average value of the SU(1,1) parity operator Πloss is the product of two 𝑠-ordered single-mode Wigner distribution: with 𝑠 = 1 + √ 2𝑒 𝑖 𝜋/4 /𝜂 𝑎 𝑇 (and analogously for 𝑠 ). 101 The fact that 𝑠 is a complex value comes mathematically from the factor two in (2.12) or equivalently of the normal form of the two-mode parity operator. A two-mode uncorrelated case could be verified experimentally using two separable coherent states as input and once the tomography of the detectors has been performed.…”
Section: Finite Efficiency Detectorsmentioning
confidence: 99%
“…If the two modes are initially uncorrelated, |𝜓 = 𝑛 𝑎 ,𝑛 𝑏 𝜓 𝑛 𝑎 𝜓 𝑛 𝑏 |𝑛 𝑎 , 𝑛 𝑏 , the average value of the SU(1,1) parity operator Πloss is the product of two 𝑠-ordered single-mode Wigner distribution: with 𝑠 = 1 + √ 2𝑒 𝑖 𝜋/4 /𝜂 𝑎 𝑇 (and analogously for 𝑠 ). 101 The fact that 𝑠 is a complex value comes mathematically from the factor two in (2.12) or equivalently of the normal form of the two-mode parity operator. A two-mode uncorrelated case could be verified experimentally using two separable coherent states as input and once the tomography of the detectors has been performed.…”
Section: Finite Efficiency Detectorsmentioning
confidence: 99%
“…This editorial introduces the successful invited submissions [1][2][3][4][5] to a Special Issue of Symmetry on the subject area of "Symmetry in Quantum Optics Models".…”
mentioning
confidence: 99%