| [1] | Nilsen, M.A. and Chuang, I.L. (2000) Quantum Computation and Quantum Information. Cambridge University, Cambridge. | 
                     
                                
                                    
                                        | [2] | Knill, E., Laflamme, R. and Milburn, G.J. (2001) A Scheme for Efficient Quantum Computation with Linear Optics. Nature, 409, 46-52. https://doi.org/10.1038/35051009
 | 
                     
                                
                                    
                                        | [3] | O’Brien, J.L., Pryde, G.J., White, A.G., Ralph, T.C. and Branning, D. (2003) Demonstration of an All-Optical Quantum Controlled-NOT Gate. Nature, 426, 264-267. https://doi.org/10.1038/nature02054
 | 
                     
                                
                                    
                                        | [4] | Wei, H.R. and Deng, F.G. (2013) Scalable Photonic Quantum Computing Assisted by Quantum-Dot Spin in Doublesided Optical Microcavity. Optics Express, 21, 17671-17685. https://doi.org/10.1364/OE.21.017671
 | 
                     
                                
                                    
                                        | [5] | Jones, J.A., Mosca, M. and Hansen, R.H. (1998) Implementation of a Quantum Search Algorithmon a Quantum Computer. Nature, 393, 344-346. https://doi.org/10.1038/30687
 | 
                     
                                
                                    
                                        | [6] | Long, G.L. and Xiao, L. (2003) Experimental Realization of a Fetching Algorithm in a 7-Qubit NMR Spin Liouville Space Computer. The Journal of Chemical Physics, 119, 8473-8481. https://doi.org/10.1063/1.1611177
 | 
                     
                                
                                    
                                        | [7] | Feng, G.R., Xu, G.F. and Long, G.L. (2013) Experimental Realization of Non-Adiabatic Holonomic Quantum Computation. Physical Review Letters, 110, Article ID: 190501. https://doi.org/10.1103/PhysRevLett.110.190501
 | 
                     
                                
                                    
                                        | [8] | Togan, E., Chu, Y., Trifonov, A.S., Jiang, L., Maze, J., Childress, L., Dutt, M.G., Sørensen, A.S., Hemmer, P.R., Zibrov, A.S. and Lukin, M.D. (2010) Quantum Entanglement between an Optical Photon and a Solid-State Spin Qubit. Nature, 466, 730-734. https://doi.org/10.1038/nature09256
 | 
                     
                                
                                    
                                        | [9] | Yang, W.L., Yin, Z.Q., Xu, Z.Y., Feng, M. and Du, J.F. (2010) One-Step Implementationofmulti Qubit Conditional Phase Gating with Nitrogen-Vacancy Centers Coupled to Ahigh-Qsilica Microsphere Cavity. Applied Physics Letters, 96, Article ID: 241113. https://doi.org/10.1063/1.3455891
 | 
                     
                                
                                    
                                        | [10] | Wei, H.R. and Long, G.L. (2015) Universal Photonic Quantum Gates Assisted by Ancilladiamond Nitrogen-Vacancy Centers Coupled to Resonators. Physical Review A, 91, Article ID: 032324. https://doi.org/10.1103/PhysRevA.91.032324
 | 
                     
                                
                                    
                                        | [11] | Wei, H.R. and Deng, F.G. (2013) Compact Quantum Gates on Electron-Spin Qubits Assisted by Diamond Nitrogen-Vacancy Centers Inside Cavities. Physical Review A, 88, Article ID: 042323 https://doi.org/10.1103/PhysRevA.88.042323
 | 
                     
                                
                                    
                                        | [12] | Han, X., Guo, Q., Zhu, A.D., Zhang, S. and Wang, H.F. (2017) Effective W-State Fusion Strategies in Nitrogen Vacancy Centers via Coupling to Microtoroidal Resonators. Optics Express, 25, 17701-17712. https://doi.org/10.1364/OE.25.017701
 | 
                     
                                
                                    
                                        | [13] | Scully, M.O. and Zubairy, M.S. (1997) Quantum Optics. Cambridge University, Cambridge. https://doi.org/10.1017/CBO9780511813993
 | 
                     
                                
                                    
                                        | [14] | Blais, A., Huang, R.S., Wallraff, A., Girvin, S.M. and Schoelkopf, R.J. (2004) Cavity Quantumelectrodynamics for Superconducting Electrical Circuits: An Architecture for Quantumcomputation. Physical Review A, 69, Article ID: 062320. https://doi.org/10.1103/PhysRevA.69.062320
 | 
                     
                                
                                    
                                        | [15] | Wallraff, A., Schuster, D.I., Blais, A., Frunzio, L., Huang, R.S., Majer, J., Kumar, S., Girvin, S.M. and Schoelkopf, R.J. (2004) Strong Coupling of a Single Photon to a Superconducting Qubit Using Circuit Quantum Electrodynamics. Nature, 431, 162-167. https://doi.org/10.1038/nature02851
 | 
                     
                                
                                    
                                        | [16] | Chang, J.B., Vissers, M.R., Córcoles, A.D., Sandberg, M., et al. (2013) Improved Superconducting Qubit Coherence Using Titanium Nitride. Applied Physics Letters, 103, Article ID: 012602. https://doi.org/10.1063/1.4813269
 | 
                     
                                
                                    
                                        | [17] | Chow, J.M., Gambetta, J.M., Magesan, E., Abraham, D.W., et al. (2014) Implementing a Strad of a Scalable Fault-Tolerant Quantum Computing Fabric. Nature Communications, 5, Article No. 4015. https://doi.org/10.1038/ncomms5015
 | 
                     
                                
                                    
                                        | [18] | Kelly, J., Barends, R., Fowler, A.G., Megrant, A., Jeffrey, E., White, T.C., et al. (2015) Sate Preservation by Repetitive Error Detection in a Superconducting Quantum Circuit. Nature, 519, 66-69. https://doi.org/10.1038/nature14270
 | 
                     
                                
                                    
                                        | [19] | Megrant, A., Neill, C., Barends, R., Chiaro, B., et al. (2012) Planar Superconducting Resonators with Internal Quality Factor above One Million. Applied Physics Letters, 100, Article ID: 113510. https://doi.org/10.1063/1.3693409
 | 
                     
                                
                                    
                                        | [20] | Wang, H., Mariantoni, M., Bialczak, R.C., Lenander, M., et al. (2011) Deterministic Entanglement of Photons in Two Superconducting Microwave Resonators. Physical Review Letters, 106, Article ID: 060401. https://doi.org/10.1103/PhysRevLett.106.060401
 | 
                     
                                
                                    
                                        | [21] | Adhikari, P., Hafezi, M. and Taylor, J.M. (2013) Nonlinear Optics Quantum Computing with Circuit QED. Physical Review Letters, 110, Article ID: 060503. https://doi.org/10.1103/PhysRevLett.110.060503
 | 
                     
                                
                                    
                                        | [22] | DiCarlo, L., Chow, J.M., Gambetta, J.M., Bishop, L.S., et al. (2009) Demonstration of Two Qubit Algorithms with a Super-Conducting Quantum Processor. Nature, 460, 240-244. https://doi.org/10.1038/nature08121
 | 
                     
                                
                                    
                                        | [23] | Haack, G., Helmer, F., Mariantoni, M., Marquardt, F. and Solano, E. (2010) Resonant Quantum Gates in Circuit Quantum Electrodynamics. Physical Review B, 82, Article ID: 024514. https://doi.org/10.1103/PhysRevB.82.024514
 | 
                     
                                
                                    
                                        | [24] | Strauch, F.W. (2011) Quantum Logic Gates for Superconducting Resonator Qubits. Physical Review A, 84, Article ID: 052313. https://doi.org/10.1103/PhysRevA.84.052313
 | 
                     
                                
                                    
                                        | [25] | Hua, M., Tao, M.J. and Deng, F.G. (2015) Fast Universal Quantum Gates on Microwave Photons with All-Resonance Operations in Circuit QED. Scientific Reports, 5, Article No. 9274 https://doi.org/10.1038/srep09274
 | 
                     
                                
                                    
                                        | [26] | Xue, Z.Y., Zhou, J. and Wang, Z.D. (2015) Universal Holonomic Quantum Gates in Decoherence Free Subspace on Superconducting Circuits. Physical Review A, 92, Article ID: 022320. https://doi.org/10.1103/PhysRevA.92.022320
 | 
                     
                                
                                    
                                        | [27] | Xue, Z.Y., Gu, F.L., Hong, Z.P., Yang, Z.H., Zhang, D.W., Hu, Y. and You, J.Q. (2017) Nonadiabatic Holonomic Quantum Computation with Dressed-State Qubits. Physical Review Applied, 7, Article ID: 054022. https://doi.org/10.1103/PhysRevApplied.7.054022
 | 
                     
                                
                                    
                                        | [28] | Steffen, M., Ansmann, M., Bialczak, R.C., et al. (2006) Measurement of the Entanglement of Two Superconducting Qubits via State Tomography. Science, 313, 1423-1425. https://doi.org/10.1126/science.1130886
 | 
                     
                                
                                    
                                        | [29] | Cao, Y., Huo, W.Y., Ai, Q. and Long, G.L. (2011) Theory of Degenerate Three-Wave Mixing Using Circuit QED in Solid-State Circuits. Physical Review A, 84, Article ID: 053846. https://doi.org/10.1103/PhysRevA.84.053846
 | 
                     
                                
                                    
                                        | [30] | Leghtas, Z., Vool, U., Shankar, S., Hatridge, M., Girvin, S.M., Devoret, M.H. and Mirrahimi, M. (2013) Stabilizing a Bell State of Two Superconducting Qubits by Dissipation Engineering. Physical Review A, 88, Article ID: 023849. https://doi.org/10.1103/PhysRevA.88.023849
 | 
                     
                                
                                    
                                        | [31] | Strauch, F.W. (2012) All-Resonant Control of Superconducting Resonators. Physical Review Letter, 109, Article ID: 210501. https://doi.org/10.1103/PhysRevLett.109.210501
 | 
                     
                                
                                    
                                        | [32] | Strauch, F.W., Onyango, D., Jacobs, K. and Simmonds, R.W. (2012) Entangled-State Synthesis for Superconducting Resonators. Physical Review A, 85, Article ID: 022335. https://doi.org/10.1103/PhysRevA.85.022335
 | 
                     
                                
                                    
                                        | [33] | Wang, W., Hu, L., Xu, Y., Liu, K., Ma, Y., Zheng, S.B., et al. (2017) Converting Quasi-Classical States into Arbitrary Fock State Super-Positions in a Superconducting Circuit. Physical Review Letter, 118, Article ID: 223604. https://doi.org/10.1103/PhysRevLett.118.223604
 | 
                     
                                
                                    
                                        | [34] | Wallraff, A., Schuster, D.I., Blais, A., Frunzio, L., Majer, J., Devoret, M.H., Girvin, S.M, Schoelkopf, R.J. (2005) Approaching Unit Visibility for Control of a Superconducting Qubit with Dispersive Readout. Physical Review Letter, 95, Article ID: 060501. https://doi.org/10.1103/PhysRevLett.95.060501
 | 
                     
                                
                                    
                                        | [35] | Johnson, B.R., Reed, M.D., Houck, A.A., Schuster, D.I., Bishop, L.S., et al. (2010) Quantum Non-Demolition Detection of Single Microwave Photons in a Circuit. Nature Physics, 6, 663-667. https://doi.org/10.1038/nphys1710
 | 
                     
                                
                                    
                                        | [36] | Feng, W., Wang, P.Y., Ding, X.M., Xu, L.T. and Li, X.Q. (2011) Generating and Stabilizingthe Greenberge-Horne-Zeilinger State in Circuit QED: Joint Measurement, Zeno Effect, and Feedback. Physical Review A, 83, Article ID: 042313. https://doi.org/10.1103/PhysRevA.83.042313
 | 
                     
                                
                                    
                                        | [37] | Majer, J., Chow, J.M., Gambetta, J.M., Koch, J., et al. (2007) Coupling Superconducting Qubits via a Cavity Bus. Nature, 449, 443-447. https://doi.org/10.1038/nature06184
 | 
                     
                                
                                    
                                        | [38] | Hua, M., Tao, M.J. and Deng, F.G. (2016) Quantum State Transfer and Controlled-Phase Gate on One-Dimensional Superconducting Resonators Assisted by a Quantum Bus. Scientific Reports, 6, Article No. 22037. https://doi.org/10.1038/srep22037
 | 
                     
                                
                                    
                                        | [39] | Wu, C.W., Gao, M., Li, H.Y., Deng, Z.J., Dai, H.Y., Chen, P.X. and Li, C.Z. (2012) Scalable One-Way Quantum Computer Using On-Chip Resonator Qubits. Physical Review A, 85, Article ID: 042301. https://doi.org/10.1103/PhysRevA.85.042301
 | 
                     
                                
                                    
                                        | [40] | Yang, C.P., Su, Q.P. and Han, S.Y. (2012) Generation of Greenberger-Horne-Zeilinger Entangled States of Photons in Multiple Cavities via a Superconducting Qutritor Anatomthrough Resonant Interaction. Physical Review A, 86, Article ID: 022329. https://doi.org/10.1103/PhysRevA.86.022329
 | 
                     
                                
                                    
                                        | [41] | Yang, C.P., Su, Q.P., Zheng, S.B. and Nori, F. (2016) Crosstalk-Insensitive Method for Simultaneously Coupling Multiple Pairs of Resonators. Physical Review A, 93, Article ID: 042307. https://doi.org/10.1103/PhysRevA.93.042307
 | 
                     
                                
                                    
                                        | [42] | Galiautdinov, A., Korotkov, A.N. and Martinis, J.M. (2012) Resonator-Zero-Qubit Architecture for Superconducting Qubits. Physical Review A, 85, Article ID: 042321. https://doi.org/10.1103/PhysRevA.85.042321
 | 
                     
                                
                                    
                                        | [43] | Ciracf, J.I., Ekert, A.K., Huelga, S.F. and Macchiavello, C. (1999) Unconditional Preparation of Entanglement between Atoms in Cascaded Optical Cavities. Physical Review A, 59, 49. |