Quantum Error Correction & Fault Tolerance
899 papers
Showing 841-852 of 899
Qubit purification speed-up for three complementary continuous measurements.
Ruskov R, Combes J, Mølmer K, Wiseman HM.
Realization of three-qubit quantum error correction with superconducting circuits.
Reed MD, DiCarlo L, Nigg SE, Sun L, Frunzio L, Girvin SM, Schoelkopf RJ.
Reversal of photon-scattering errors in atomic qubits.
Akerman N, Kotler S, Glickman Y, Ozeri R.
Room-temperature quantum bit memory exceeding one second.
Maurer PC, Kucsko G, Latta C, Jiang L, Yao NY, Bennett SD, Pastawski F, Hunger D, Chisholm N, Markham M, Twitchen DJ, Cirac JI, Lukin MD.
The black-hole/qubit correspondence: an up-to-date review
L. Borsten, M. J. Duff, P. Lévay
Universal quantum gate set approaching fault-tolerant thresholds with superconducting qubits.
Chow JM, Gambetta JM, Córcoles AD, Merkel ST, Smolin JA, Rigetti C, Poletto S, Keefe GA, Rothwell MB, Rozen JR, Ketchen MB, Steffen M.
Valley-based noise-resistant quantum computation using Si quantum dots.
Culcer D, Saraiva AL, Koiller B, Hu X, Das Sarma S.
A scheme to protect against multiple quantum erasures
Gilson O. dos Santos, Francisco M. de Assis
A single-atom quantum memory.
Specht HP, Nölleke C, Reiserer A, Uphoff M, Figueroa E, Ritter S, Rempe G.
Achieving perfect completeness in classical-witness quantum Merlin-Arthur proof systems
Stephen P. Jordan, Hirotada Kobayashi, Daniel Nagaj, Harumichi Nishimura
Affleck-Kennedy-Lieb-Tasaki state on a honeycomb lattice is a universal quantum computational resource.
Wei TC, Affleck I, Raussendorf R.
Demonstration of sufficient control for two rounds of quantum error correction in a solid state ensemble quantum information processor.
Moussa O, Baugh J, Ryan CA, Laflamme R.