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We present a novel framework for simulating matrix models on a quantum computer.
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2016
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2016
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J. Maldacena, D. Simmons-Duffin, and A. Zhiboedov, “Looking for a bulk point,” JHEP
2017
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S. P. Jordan, “Fast quantum computation at arbitrarily low energy,” Physical Review A
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J. Maldacena and A. Milekhin, “To gauge or not to gauge?,” JHEP
2018
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D. Berenstein, “Submatrix deconfinement and small black holes in AdS,” JHEP
2018
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J. Preskill, “Simulating quantum field theory with a quantum computer,” PoS
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2018
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2018
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K. A. Landsman, C. Figgatt, T. Schuster, N. M. Linke, B. Yoshida, N. Y. Yao, and C. Monroe, “Verified quantum information scrambling,” Nature
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2019
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M. Hanada, G. Ishiki, and H. Watanabe, “Partial Deconfinement,” JHEP
2019
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N. Bao and J. Liu, “Quantum algorithms for conformal bootstrap,” Nuclear Physics B
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M. Kieferova, A. Scherer, and D. W. Berry, “Simulating the dynamics of time-dependent hamiltonians with a truncated dyson series,” Physical Review A
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2020
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M. K. Joshi, A. Elben, B. Vermersch, T. Brydges, C. Maier, P. Zoller, R. Blatt, and C. F. Roos, “Quantum information scrambling in a trapped-ion quantum simulator with tunable range interactions,” Phys. Rev. Lett
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2020
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