
TL;DR
This paper develops a covariant light-front Hamiltonian framework for relativistic systems, incorporating Fock sector dependent renormalization, antiparticle effects, and a suitable regularization scheme, enabling precise predictions and a new approach to baryonic chiral effective field theory.
Contribution
It introduces a covariant light-front formalism with Fock decomposition and sector-dependent renormalization, facilitating nonperturbative calculations and a novel formulation of baryonic chiral effective field theory.
Findings
Established a covariant light-front Hamiltonian framework.
Validated Taylor-Lagrange regularization for light-front dynamics.
Laid groundwork for baryonic chiral effective field theory.
Abstract
We present a general framework to study relativistic compound systems in a Hamiltonian formalism. This formalism is based on the explicitly covariant formulation of light-front dynamics, with a decomposition of the state vector in Fock components. In order to be able to make definite predictions order by order in the truncation of the Fock expansion, we use an appropriate Fock sector dependent renormalization scheme. Our covariant formulation enables us to have a strict control of any violation of rotational invariance due to the choice of a given orientation of the light-front plane. This is mandatory in order to define the necessary renormalization conditions, and hence to be able to calculate physical observables. We emphasize the role played by antiparticle degrees of freedom in order to control, order by order in the Fock expansion, the scale invariance of physical observables.…
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