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We consider the distribution of secret keys, both in a bipartite and a multipartite (conference) setting, via a quantum network and establish a framework to obtain bounds on the achievable rates.
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Adan Cabello, “Multiparty key distribution and secret sharing based on entanglement swapping,” (2000), arXiv:quant-ph/0009025 [quant-ph]
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2002
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2003
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2003
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2005
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Kai Chen and Hoi-Kwong Lo, “Conference key agreement and quantum sharing of classical secrets with noisy GHZ states,” in Proceedings. International Symposium on Information Theory, 2005. ISIT 2005. (2005) pp. 1607–1611
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2005
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2005
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2006
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Bing Qi, Chi-Hang Fred Fung, Hoi-Kwong Lo, and Xiongfeng Ma, “Time-shift attack in practical quantum cryptosystems,” Quantum Information and Computation , 073–082 (2007), arXiv: quant-ph/0512080
Eleni Diamanti, Hoi-Kwong Lo, Bing Qi, and Zhiliang Yuan, “Practical challenges in quantum key distribution,” npj Quantum Information 2
2016
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Kaushik P Seshadreesan, Masahiro Takeoka, and Mark M Wilde, “Bounds on entanglement distillation and secret key agreement for quantum broadcast channels,” IEEE Transactions on Information Theory 62
2016
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Koji Azuma, Akihiro Mizutani, and Hoi-Kwong Lo, “Fundamental rate-loss tradeoff for the quantum internet,” Nature Communications 7
2016
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K. Goodenough, D. Elkouss, and S. Wehner, “Assessing the performance of quantum repeaters for all phase-insensitive gaussian bosonic channels,” New Journal of Physics 18
2016
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Yadong Wu, Jian Zhou, Xinbao Gong, Ying Guo, Zhi-Ming Zhang, and Guangqiang He, “Continuous-variable measurement-device-independent multipartite quantum communication,” Physical Review A 93
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2007
Cited alongside, same era.
Ben Fortescue and Hoi-Kwong Lo, “Random bipartite entanglement from W and W-like states,” Physical Review Letters 98
2007
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H. J. Kimble, “The quantum internet,” Nature 453
2008
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2008
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Luigi Amico, Rosario Fazio, Andreas Osterloh, and Vlatko Vedral, “Entanglement in many-body systems,” Review of Modern Physics 80
2008
Cited alongside, same era.
Ben Fortescue and Hoi-Kwong Lo, “Random-party entanglement distillation in multiparty states,” Physical Review A 78
2008
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K. Horodecki, L. Pankowski, M. Horodecki, and P. Horodecki, “Low-dimensional bound entanglement with one-way distillable cryptographic key,” IEEE Transactions on Information Theory 54
2008
Cited alongside, same era.
Jon Yard, Patrick Hayden, and Igor Devetak, “Capacity theorems for quantum multiple-access channels: Classical-quantum and quantum-quantum capacity regions,” IEEE Transactions on Information Theory 54
2008
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2016
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2016
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2017
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2017
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2017
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2017
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2017
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Masahiro Takeoka, Kaushik P. Seshadreesan, and Mark M. Wilde, “Unconstrained capacities of quantum key distribution and entanglement distillation for pure-loss bosonic broadcast channels,” Physical Review Letters 119
2017
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Stefan Bäuml and Koji Azuma, “Fundamental limitation on quantum broadcast networks,” Quantum Science and Technology 2
2017
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Koji Azuma and Go Kato, “Aggregating quantum repeaters for the quantum internet,” Physical Review A 96
2017
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Matthias Christandl and Roberto Ferrara, “Private states, quantum data hiding, and the swapping of perfect secrecy,” Physical Review Letters 119
2017
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C Spee, JI de Vicente, D Sauerwein, and B Kraus, “Entangled pure state transformations via local operations assisted by finitely many rounds of classical communication,” Physical Review Letters 118
2017
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2017
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2017
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2018
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Stephanie Wehner, David Elkouss, and Ronald Hanson, “Quantum internet: A vision for the road ahead,” Science 362
2018
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Marco Lucamarini, Zhiliang L Yuan, James F Dynes, and Andrew J Shields, “Overcoming the rate–distance limit of quantum key distribution without quantum repeaters,” Nature 557
2018
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Xiongfeng Ma, Pei Zeng, and Hongyi Zhou, “Phase-matching quantum key distribution,” Physical Review X 8
2018
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2018
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Jie Lin and Norbert Lütkenhaus, “Simple security analysis of phase-matching measurement-device-independent quantum key distribution,” Physical Review A 98
2018
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2018
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2018
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2018
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Mark M. Wilde and Haoyu Qi, “Energy-constrained private and quantum capacities of quantum channels,” IEEE Transactions on Information Theory 64
2018
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Matej Pivoluska, Marcus Huber, and Mehul Malik, “Layered quantum key distribution,” Physical Review A 97
2018
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C. E. Bradley, J. Randall, M. H. Abobeih, R. C. Berrevoets, M. J. Degen, M. A. Bakker, M. Markham, D. J. Twitchen, and T. H. Taminiau, “A ten-qubit solid-state spin register with quantum memory up to one minute,” Physical Review X 9
2019
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2019
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M Minder, M Pittaluga, GL Roberts, M Lucamarini, JF Dynes, ZL Yuan, and AJ Shields, “Experimental quantum key distribution beyond the repeaterless secret key capacity,” Nature Photonics 13
2019
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2019
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2019
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2020
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