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The type IIB matrix model, also known as the IKKT model, has been proposed as a promising candidate for a non-perturbative formulation of superstring theory.
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Ambjorn, J., Anagnostopoulos, K.N., Bietenholz, W., Hotta, T., Nishimura, J.: Monte Carlo studies of the IIB matrix model at large N. JHEP 07
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Nishimura, J., Vernizzi, G.: Spontaneous breakdown of Lorentz invariance in IIB matrix model. JHEP 04
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Anagnostopoulos, K.N., Nishimura, J.: New approach to the complex action problem and its application to a nonperturbative study of superstring theory. Phys. Rev. D 66
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Ambjorn, J., Anagnostopoulos, K.N., Bietenholz, W., Hofheinz, F., Nishimura, J.: On the spontaneous breakdown of Lorentz symmetry in matrix models of superstrings. Phys. Rev. D 65
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Nishimura, J.: Lattice superstring and noncommutative geometry. Nucl. Phys. B Proc. Suppl. 129
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Fodor, Z., Katz, S.D.: Critical point of QCD at finite T and mu, lattice results for physical quark masses. JHEP 04
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Ambjorn, J., Anagnostopoulos, K.N., Nishimura, J., Verbaarschot, J.J.M.: Noncommutativity of the zero chemical potential limit and the thermodynamic limit in finite density systems. Phys. Rev. D 70
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Nishimura, J.: Recent developments in the type IIB matrix model. Fortsch. Phys. 62
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Clark, M.A., Kennedy, A.D.: The RHMC algorithm for two flavors of dynamical staggered fermions. Nucl. Phys. B Proc. Suppl. 129
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Klinkhamer, F.R.: IIB matrix model and regularized big bang. PTEP 2021
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