Fetching the paper…
Reading the bibliography…
Graph states are key resources for measurement-based quantum computing, which is particularly promising for photonic systems.
“Quantum repeaters: The role of imperfect local operations in quantum communication”
H.-J. Briegel, W. Dür, J. I. Cirac, and P. Zoller · 1998
Earlier work this paper cites.
“The Heisenberg representation of quantum computers” (1998)
Daniel Gottesman · 1998
Earlier work this paper cites.
“Quantum error correction via codes over GF (4)”
A. Robert Calderbank, Eric M. Rains, Peter M. Shor, and Neil J. A. Sloane · 1998
Earlier work this paper cites.
“A one-way quantum computer”
Robert Raussendorf and Hans J. Briegel · 2001
Earlier work this paper cites.
“Stabilizer codes can be realized as graph codes” (2001)
Dirk Schlingemann · 2001
Earlier work this paper cites.
“Measurement-based quantum computation on cluster states”
Robert Raussendorf, Daniel E. Browne, and Hans J. Briegel · 2003
Earlier work this paper cites.
“Graphical description of the action of local Clifford transformations on graph states”
Maarten Van den Nest, Jeroen Dehaene, and Bart De Moor · 2004
Earlier work this paper cites.
“Multiparty entanglement in graph states”
M. Hein, J. Eisert, and H. J. Briegel · 2004
Earlier work this paper cites.
“Improved simulation of stabilizer circuits”
Scott Aaronson and Daniel Gottesman · 2004
Earlier work this paper cites.
“Resource-efficient linear optical quantum computation”
Daniel E. Browne and Terry Rudolph · 2005
Earlier work this paper cites.
“Entanglement in graph states and its applications” (2006)
Marc Hein, Wolfgang Dür, Jens Eisert, Robert Raussendorf, M Nest, and H-J Briegel · 2006
Earlier work this paper cites.
“Fast simulation of stabilizer circuits using a graph-state representation”
Simon Anders and Hans J. Briegel · 2006
Earlier work this paper cites.
“Percolation, renormalization, and quantum computing with nondeterministic gates”
K. Kieling, T. Rudolph, and J. Eisert · 2007
Earlier work this paper cites.
“Quantum-error-correcting codes using qudit graph states”
Shiang Yong Looi, Li Yu, Vlad Gheorghiu, and Robert B. Griffiths · 2008
Earlier work this paper cites.
“Graphical description of the action of Clifford operators on stabilizer states”
Matthew B. Elliott, Bryan Eastin, and Carlton M. Caves · 2008
Earlier work this paper cites.
“High-threshold universal quantum computation on the surface code”
Austin G. Fowler, Ashley M. Stephens, and Peter Groszkowski · 2009
Earlier work this paper cites.
“Proposal for pulsed on-demand sources of photonic cluster state strings”
Netanel H. Lindner and Terry Rudolph · 2009
Earlier work this paper cites.
“Graphical description of pauli measurements on stabilizer states”
Matthew B. Elliott, Bryan Eastin, and Carlton M. Caves · 2009
Earlier work this paper cites.
“Introduction to optical quantum information processing”
Pieter Kok and Brendon W. Lovett · 2010
Cited alongside, same era.
“Optimal preparation of graph states”
Adán Cabello, Lars Eirik Danielsen, Antonio J. López-Tarrida, and José R. Portillo · 2011
Cited alongside, same era.
“Arbitrarily complete Bell-state measurement using only linear optical elements”
W. P. Grice · 2011
Cited alongside, same era.
“Efficient inner-product algorithm for stabilizer states” (2012)
Hector J. Garcia, Igor L. Markov, and Andrew W. Cross · 2012
Cited alongside, same era.
“Quantum hypergraph states”
Matteo Rossi, Marcus Huber, Dagmar Bruß, and Chiara Macchiavello · 2013
Cited alongside, same era.
“ 3 / 4 3/4 -efficient Bell measurement with passive linear optics and unentangled ancillae”
Fabian Ewert and Peter van Loock · 2014
Cited alongside, same era.
“Near-deterministic hybrid generation of arbitrary photonic graph states using a single quantum emitter and linear optics”
Paul Hilaire, Leonid Vidro, Hagai S. Eisenberg, and Sophia E. Economou · 2023
Later among the works it cites.
“Clifford manipulations of stabilizer states: A graphical rule book for Clifford unitaries and measurements on cluster states, and application to photonic quantum computing” (2023)
Ashlesha Patil and Saikat Guha · 2023
Later among the works it cites.
“Optimizing graph codes for measurement-based loss tolerance”
Thomas J. Bell, Love A. Pettersson, and Stefano Paesani · 2023
Later among the works it cites.
“FusionGraphTransformer”
Matthias C. Löbl et al · 2023
Later among the works it cites.
“High-threshold quantum computing by fusing one-dimensional cluster states”
Stefano Paesani and Benjamin J. Brown · 2023
Later among the works it cites.
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
“All-photonic quantum repeaters”
Koji Azuma, Kiyoshi Tamaki, and Hoi-Kwong Lo · 2015
Cited alongside, same era.
“From three-photon Greenberger-Horne-Zeilinger states to ballistic universal quantum computation”
Mercedes Gimeno-Segovia, Pete Shadbolt, Dan E. Browne, and Terry Rudolph · 2015
Cited alongside, same era.
“Near-deterministic creation of universal cluster states with probabilistic bell measurements and three-qubit resource states”
Hussain A. Zaidi, Chris Dawson, Peter van Loock, and Terry Rudolph · 2015
Cited alongside, same era.
“Towards practical linear optical quantum computing”
Mercedes Gimeno-Segovia · 2016
Cited alongside, same era.
“Transforming graph states using single-qubit operations”
Axel Dahlberg and Stephanie Wehner · 2018
Cited alongside, same era.
“Mapping graph state orbits under local complementation”
Jeremy C. Adcock, Sam Morley-Short, Axel Dahlberg, and Joshua W. Silverstone · 2020
Cited alongside, same era.
“Photonic fusion of entangled resource states from a quantum emitter” (2023)
Yijian Meng, Carlos F. D. Faurby, Ming Lai Chan, Patrik I. Sund, Ying Wang Zhe Liu, Nikolai Bart, Andreas D. Wieck, Leonardo Midolo Arne Ludwig, Anders S. Sørensen, Stefano Paesani, and Peter Lodahl · 2023
Later among the works it cites.
“All-photonic one-way quantum repeaters with measurement-based error correction”
Daoheng Niu, Yuxuan Zhang, Alireza Shabani, and Hassan Shapourian · 2023
Later among the works it cites.
“High-rate entanglement between a semiconductor spin and indistinguishable photons”
N. Coste, D. A. Fioretto, N. Belabas, S. C. Wein, P. Hilaire, R. Frantzeskakis, M. Gundin, B. Goes, N. Somaschi, M. Morassi, et al · 2023
Later among the works it cites.
“Deterministic generation of indistinguishable photons in a cluster state”
Dan Cogan, Zu-En Su, Oded Kenneth, and David Gershoni · 2023
Later among the works it cites.
“Graph-theoretical optimization of fusion-based graph state generation”
Seok-Hyung Lee and Hyunseok Jeong · 2023
Later among the works it cites.
“Increasing error tolerance in quantum computers with dynamic bias arrangement” (2023)
Hector Bombín, Chris Dawson, Naomi Nickerson, Mihir Pant, and Jordan Sullivan · 2023
Later among the works it cites.
“Extracting GHZ states from linear cluster states”
J. de Jong, F. Hahn, N. Tcholtchev, M. Hauswirth, and A. Pappa · 2024
Closest in time.
“Loss-tolerant architecture for quantum computing with quantum emitters”
Matthias C. Löbl, Stefano Paesani, and Anders S. Sørensen · 2024
Closest in time.
“Generating graph states with a single quantum emitter and the minimum number of fusions” (2024)
Matthias C. Löbl, Love A. Pettersson, Andrew Jena, Luca Dellantonio, Stefano Paesani, and Anders S. Sørensen · 2024
Closest in time.
“Iso-entangled bases and joint measurements”
Flavio Del Santo, Jakub Czartowski, Karol Życzkowski, and Nicolas Gisin · 2024
Closest in time.
“Fusion of deterministically generated photonic graph states”
Philip Thomas, Leonardo Ruscio, Olivier Morin, and Gerhard Rempe · 2024
Closest in time.
“Deterministic photon source of genuine three-qubit entanglement”
Yijian Meng, Ming Lai Chan, Rasmus B. Nielsen, Martin H. Appel, Zhe Liu, Ying Wang, Bart Nikolai, Andreas D. Wieck, Arne Ludwig, Leonardo Midolo, Alexey Tiranov, Anders S. Sørensen, and Peter Lodahl · 2024
Closest in time.
“High-photon-loss threshold quantum computing using GHZ-state measurements”
Brendan Pankovich, Angus Kan, Kwok Ho Wan, Maike Ostmann, Alex Neville, Srikrishna Omkar, Adel Sohbi, and Kamil Brádler · 2024
Closest in time.