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Edoardo Mirabella

Bio: Edoardo Mirabella is an academic researcher from Max Planck Society. The author has contributed to research in topics: Electroweak interaction & Minimal Supersymmetric Standard Model. The author has an hindex of 22, co-authored 53 publications receiving 1743 citations. Previous affiliations of Edoardo Mirabella include Commissariat à l'énergie atomique et aux énergies alternatives.

Papers published on a yearly basis

Papers
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Journal ArticleDOI
TL;DR: GoSam as mentioned in this paper is a package for the automated calculation of one-loop amplitudes, which can be used for Monte Carlo programs with QCD and/or electroweak corrections to multi-particle processes.
Abstract: We present the version 2.0 of the program package GoSam for the automated calculation of one-loop amplitudes. GoSam is devised to compute one-loop QCD and/or electroweak corrections to multi-particle processes within and beyond the Standard Model. The new code contains improvements in the generation and in the reduction of the amplitudes, performs better in computing time and numerical accuracy, and has an extended range of applicability. The extended version of the “Binoth-Les-Houches-Accord” interface to Monte Carlo programs is also implemented. We give a detailed description of installation and usage of the code, and illustrate the new features in dedicated examples.

246 citations

Journal ArticleDOI
TL;DR: In this article, a semi-analytic method for the integrand reduction of one-loop amplitudes is presented, based on the systematic application of the Laurent expansions to integrand-decomposition.
Abstract: We present a semi-analytic method for the integrand reduction of one-loop amplitudes, based on the systematic application of the Laurent expansions to the integrand-decomposition. In the asymptotic limit, the coefficients of the master integrals are the solutions of a diagonal system of equations, properly corrected by counterterms whose parametric form is known a priori. The Laurent expansion of the integrand is implemented through polynomial division. The extension of the integrand-reduction to the case of numerators with rank larger than the number of propagators is discussed as well.

177 citations

Journal ArticleDOI
TL;DR: In this article, the evaluation of scattering amplitudes can be formulated as a multivariate polynomial division problem, with the components of the integrationmomenta as indeterminates, and a recursive algorithm based on the weak nullstellensatz theorem and on the division modulo the Grobner basis associated to all possible multi-particle cuts.

160 citations

Journal ArticleDOI
TL;DR: In this article, the authors focus on systems of equations for Feynman integrals having a linear dependence on the dimensional parameter, and identify the criteria to bring them in a canonical form, where the dependence of the dimensional parameters is disentangled from the kinematics.
Abstract: We elaborate on the method of differential equations for evaluating Feynman integrals. We focus on systems of equations for master integrals having a linear dependence on the dimensional parameter. For these systems we identify the criteria to bring them in a canonical form, recently identified by Henn, where the dependence of the dimensional parameter is disentangled from the kinematics. The determination of the transformation and the computation of the solution are obtained by using Magnus and Dyson series expansion. We apply the method to planar and non-planar two-loop QED vertex diagrams for massive fermions, and to non-planar two-loop integrals contributing to 2 → 2 scattering of massless particles. The extension to systems which are polynomial in the dimensional parameter is discussed as well.

155 citations

Journal ArticleDOI
TL;DR: In this paper, the authors present the calculation of the NLO QCD corrections to the associated production of a Higgs boson and two jets, in the infinite top-mass limit.

93 citations


Cited by
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Journal ArticleDOI
TL;DR: MadGraph5 aMC@NLO as discussed by the authors is a computer program capable of handling all these computations, including parton-level fixed order, shower-matched, merged, in a unified framework whose defining features are flexibility, high level of parallelisation and human intervention limited to input physics quantities.
Abstract: We discuss the theoretical bases that underpin the automation of the computations of tree-level and next-to-leading order cross sections, of their matching to parton shower simulations, and of the merging of matched samples that differ by light-parton multiplicities. We present a computer program, MadGraph5 aMC@NLO, capable of handling all these computations — parton-level fixed order, shower-matched, merged — in a unified framework whose defining features are flexibility, high level of parallelisation, and human intervention limited to input physics quantities. We demonstrate the potential of the program by presenting selected phenomenological applications relevant to the LHC and to a 1-TeV e + e − collider. While next-to-leading order results are restricted to QCD corrections to SM processes in the first public version, we show that from the user viewpoint no changes have to be expected in the case of corrections due to any given renormalisable Lagrangian, and that the implementation of these are well under way.

6,509 citations

Journal ArticleDOI
TL;DR: In this article, theoretical and phenomenological aspects of two-Higgs-doublet extensions of the Standard Model are discussed and a careful study of spontaneous CP violation is presented, including an analysis of the conditions which have to be satisfied in order for a vacuum to violate CP.

2,395 citations

Proceedings ArticleDOI
01 Jan 2007
TL;DR: In this paper, a preliminary set of updated NLO parton distributions and their uncertainties determined from CCFR and NuTeV dimuon cross sections are presented, along with additional jet data from HERA and the Tevatron.
Abstract: We present a preliminary set of updated NLO parton distributions. For the first time we have a quantitative extraction of the strange quark and antiquark distributions and their uncertainties determined from CCFR and NuTeV dimuon cross sections. Additional jet data from HERA and the Tevatron improve our gluon extraction. Lepton asymmetry data and neutrino structure functions improve the flavour separation, particularly constraining the down quark valence distribution.

1,288 citations

Journal ArticleDOI
TL;DR: MadGraph5_aMC@NLO as discussed by the authors is a computer program capable of handling parton-level fixed order, shower-matched, merged computations in a unified framework whose defining features are flexibility, high level of parallelisation, and human intervention limited to input physics quantities.
Abstract: We discuss the theoretical bases that underpin the automation of the computations of tree-level and next-to-leading order cross sections, of their matching to parton shower simulations, and of the merging of matched samples that differ by light-parton multiplicities. We present a computer program, MadGraph5_aMC@NLO, capable of handling all these computations -- parton-level fixed order, shower-matched, merged -- in a unified framework whose defining features are flexibility, high level of parallelisation, and human intervention limited to input physics quantities. We demonstrate the potential of the program by presenting selected phenomenological applications relevant to the LHC and to a 1-TeV $e^+e^-$ collider. While next-to-leading order results are restricted to QCD corrections to SM processes in the first public version, we show that from the user viewpoint no changes have to be expected in the case of corrections due to any given renormalisable Lagrangian, and that the implementation of these are well under way.

852 citations

Journal ArticleDOI
TL;DR: The main features of version 9.0 are: improved tensor reduction and partial fractioning of loop integrals, new functions for using FeynCalc together with tools for reduction of scalar loop Integrals using integration-by-parts (IBP) identities, better interface to FeynArts and support for S U ( N ) generators with explicit fundamental indices.

795 citations