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We present a new analysis method that allows one to understand and model excited state contributions in observables that are dominated by a pion pole.
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1999
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2002
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T. E. O. Ericson, B. Loiseau and A. W. Thomas, Determination of the pion-nucleon coupling constant and scattering lengths , Phys. Rev. C66
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2014
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O. Bär, Nucleon-pion-state contribution to nucleon two-point correlation functions , Phys. Rev. D92
2015
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2002
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T. Fuchs and S. Scherer, Pion electroproduction, partially conserved axial-vector current, chiral Ward identities, and the axial form factor revisited , Phys. Rev. C68
2003
Cited alongside, same era.
D. Mohler and S. Schaefer, Remarks on strange-quark simulations with Wilson fermions , 2003.13359
2003
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T. Gorringe and H. W. Fearing, Induced pseudoscalar coupling of the proton weak interaction , Rev. Mod. Phys. 76
2004
Cited alongside, same era.
S. R. Beane and M. J. Savage, Baryon axial charge in a finite volume , Phys. Rev. D70
2004
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D. V. Bugg, The pion nucleon coupling constant , Eur. Phys. J. C33
2004
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SciDAC/LHPC/UKQCD
2005
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2015
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Jülich Supercomputing Centre, JUQUEEN: IBM Blue Gene/Q ® {}^{\text{\textregistered}} Supercomputer System at the Jülich Supercomputing Centre , JLSRF 1
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Particle Data Group
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Jülich Supercomputing Centre, JURECA: Modular supercomputer at Jülich Supercomputing Centre , JLSRF 4
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S. L. Adler and Y. Dothan, Low-Energy Theorem for the Weak Axial-Vector Vertex , Phys. Rev. 151
2062
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