The author computes the one-loop Higgs self-energy and reinterprets the on-shell renormalized propagator as a momentum-dependent Higgs mass, claiming a 0.31% deviation testable at the LHC.
Three-loop corrections to the lightest Higgs scalar boson mass in supersymmetry
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abstract
I evaluate the largest three-loop corrections to the mass of the lightest Higgs scalar boson in the Minimal Supersymmetric Standard Model in a mass-independent renormalization scheme, using effective field theory and renormalization group methods. The contributions found here are those that depend only on strong and Yukawa interactions and on the leading and next-to-leading logarithms of the ratio of a typical superpartner mass scale to the top quark mass. The approximation assumes that all superpartners and the other Higgs bosons can be treated as much heavier than the top quark, but does not assume their degeneracy. I also discuss the consistent addition of the three-loop corrections to a complete two-loop calculation.
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One-Loop Correction to the Higgs Mass
The author computes the one-loop Higgs self-energy and reinterprets the on-shell renormalized propagator as a momentum-dependent Higgs mass, claiming a 0.31% deviation testable at the LHC.