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Linear Canonical Transformations in Relativistic Quantum Physics

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arxiv 1804.10053 v5 pith:SDRMOS5W submitted 2018-04-25 quant-ph

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keywords lctslineartransformationscanonicalquantumrelativisticsomecovariance
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Linear Canonical Transformations (LCTs) are known in signal processing and optics as the generalization of certain useful integral transforms. In quantum theory, they can be identified as the linear transformations which keep invariant the canonical commutation relations characterizing the coordinates and momenta operators. In this work, the possibility of considering LCTs to be the elements of a symmetry group for relativistic quantum physics is studied using the principle of covariance. It is established that Lorentz transformations and multidimensional Fourier transforms are particular cases of LCTs and some of the main symmetry groups currently considered in relativistic theories can be obtained from the contractions of LCTs groups. It is also shown that a link can be established between a spinorial representation of LCTs and some properties of elementary fermions. This link leads to a classification which suggests the existence of sterile neutrinos and the possibility of describing a generation of fermions with a single field. Some possible applications of the obtained results are discussed. These results may, in particular, help in the establishment of a unified theory of fundamental interactions. Intuitively, LCTs correspond to linear combinations of energy-momentum and spacetime compatible with the principle of covariance.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Geometric structure of the relativistic quantum phase space

    quant-ph 2026-03 reject novelty 6.0 of 10

    A geometric equation for relativistic quantum phase space is proposed, but its central constant is fixed by hand to reproduce de Sitter spacetime and curved momentum space in the two limits.

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