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Scrambling is a process by which the state of a quantum system is effectively randomized due to the global entanglement that "hides" initially localized quantum information.
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Christoph Dankert, Richard Cleve, Joseph Emerson, and Etera Livine, “Exact and approximate unitary 2-designs and their application to fidelity estimation,” Phys. Rev. A 80
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M. B. Hastings and A. W. Harrow, “Classical and quantum tensor product expanders,” Quantum Info. Comput. 9
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Paul Zinn-Justin, “Jucys-Murphy elements and Weingarten matrices,” Letters in Mathematical Physics 91
2010
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Benoît Collins and Ion Nechita, “Random quantum channels I: Graphical calculus and the Bell state phenomenon,” Commun. Math. Phys. 297
2010
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L. Susskind, “Addendum to Fast Scramblers,” ArXiv e-prints arXiv:1101.6048 (2011), arXiv:1101.6048
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2016
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Yichen Huang, Yong-Liang Zhang, and Xie Chen, “Out-of-time-ordered correlators in many-body localized systems,” Annalen der Physik 529
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2016
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Dawei Ding, Patrick Hayden, and Michael Walter, “Conditional mutual information of bipartite unitaries and scrambling,” Journal of High Energy Physics 2016
2016
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Cécilia Lancien, “k-extendibility of high-dimensional bipartite quantum states,” Random Matrices: Theory and Applications 05
2016
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Zak Webb, “The Clifford group forms a unitary 3-design,” Quantum Info. Comput. 16
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Patrick Hayden, Sepehr Nezami, Xiao-Liang Qi, Nathaniel Thomas, Michael Walter, and Zhao Yang, “Holographic duality from random tensor networks,” Journal of High Energy Physics 2016
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Daniel A. Roberts and Beni Yoshida, “Chaos and complexity by design,” Journal of High Energy Physics 2017
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