中国物理B ›› 2026, Vol. 35 ›› Issue (4): 40303-040303.doi: 10.1088/1674-1056/ae067b
Zhen-Hui Zhang(张镇辉), Zhuo Li(李卓)†, and Li-Juan Xing(邢莉娟)
收稿日期:2025-07-11
修回日期:2025-09-10
接受日期:2025-09-15
出版日期:2026-03-24
发布日期:2026-03-24
基金资助:Zhen-Hui Zhang(张镇辉), Zhuo Li(李卓)†, and Li-Juan Xing(邢莉娟)
Received:2025-07-11
Revised:2025-09-10
Accepted:2025-09-15
Online:2026-03-24
Published:2026-03-24
Contact:
Zhuo Li
E-mail:lizhuo@xidian.edu.cn
Supported by:摘要: We study the algebraic structures of a generalized class of quasi-cyclic codes of index two, and prove that any quasi-cyclic code of index two can be transformed into our proposed quasi-cyclic codes. We determine the generator forms of the proposed quasi-cyclic codes and their Hermitian dual codes. We establish the necessary and sufficient conditions for Hermitian self-orthogonality and dual-containing property to construct quantum stabilizer codes via the Hermitian construction method. As an application, 10 record-breaking quantum stabilizer codes are constructed.
中图分类号: (Quantum information)
Zhen-Hui Zhang(张镇辉), Zhuo Li(李卓), and Li-Juan Xing(邢莉娟). New binary quantum stabilizer codes from classical quasi-cyclic codes of index two[J]. 中国物理B, 2026, 35(4): 40303-040303.
Zhen-Hui Zhang(张镇辉), Zhuo Li(李卓), and Li-Juan Xing(邢莉娟). New binary quantum stabilizer codes from classical quasi-cyclic codes of index two[J]. Chin. Phys. B, 2026, 35(4): 40303-040303.
| [1] Arute F, Arya K, Babbush R, et al. 2019 Nature 574 505 [2] Knill E, Laflamme R and Zurek W H 1998 Science 279 342 [3] Gottesman D 1997 Stabilizer codes and quantum error correction (California Institute of Technology) [4] Du C, Ma Z and Xiong M 2023 Chin. Phys. B 32 050307 [5] Hong H Y, Lu X J and Kuang S 2023 Chin. Phys. B 32 040603 [6] Xiao B, Fan Z X, Sun H Q, Ma H Y and Fan X K 2025 Chin. Phys. B 34 050306 [7] Krinner S, Lacroix N, Remm A, et al. 2022 Nature 605 669 [8] Steane A 1996 Physical and Engineering Sciences 452 2551 [9] Steane A M 1999 IEEE Transactions on Information Theory 45 2492 [10] Calderbank A R, Rains E M, Shor P M and Sloane N J 1999 IEEE Transactions on Information Theory 44 1369 [11] Ketkar A, Klappenecker A, Kumar S and Sarvepalli P K 2006 IEEE Transactions on Information Theory 52 4892 [12] Kasami T 1974 IEEE Transactions on Information Theory 20 679 [13] Ling S and Sole P 2003 IEEE Transactions on Information Theory 49 1052 [14] Siap I, Aydin N and Ray-Chaudhuri D K 2000 IEEE Transactions on Information Theory 46 1554 [15] Daskalov R and Hristov P 2003 IEEE Transactions on Information Theory 49 3001 [16] Chen E Z 2018 Journal of Algebra Combinatorics Discrete Structures and Applications 20 65 [17] Akre D, Aydin N, Harrington M J and Pandey S R 2021 arXiv:2108.10316 [18] Galindo C, Hernando F and Matsumoto R 2018 Finite Fields and Their Applications 52 261 [19] Lv J, Li R and Wang J 2019 IEEE Access 7 85782 [20] Lv J, Li R and Wang J 2020 IEEE Communications Letters 24 1067 [21] Guan C, Li R, Lu L, Liu Y and Song H 2022 Quantum Inf. Processing 21 263 [22] Guan C, Li R and Ma Z 2022 arXiv:2212.14225 [23] Abdukhalikov K, Bag T and Panario D 2023 Discrete Mathematics 346 113369 [24] Guan C, Li R, Lv J and Ma Z 2024 IEEE Transactions on Information Theory [25] Lally K and Fitzpatrick P 2001 Discrete Applied Mathematics 111 157 [26] BosmaW, Cannon J and Playoust C 1997 Journal of Symbolic Computation 24 235 [27] Grassl M 2007 http://www.codetables.de, Accessed on 2025-07-11 |
| [1] | Hai-Long Zhang(张海龙), Xing-Ran Chen(陈星燃), and Tan Li(李坦). Analysis of urban atmospheric influence on free-space quantum key distribution[J]. 中国物理B, 2026, 35(4): 40306-040306. |
| [2] | Cheng Zhang(张诚), Cheng Liu(刘成), Jiawei Ying(应佳伟), Shipu Gu(顾世浦), Lan Zhou(周澜), Yin Ma(马寅), Kang Gao(高亢), Hai Wei(魏海), Kai Wen(文凯), and Yubo Sheng(盛宇波). Measurement-device-independent quantum key distribution with entanglement-assisted linear Bell state measurement[J]. 中国物理B, 2026, 35(4): 40310-040310. |
| [3] | Bin Zou(邹斌), Kai Wu(吴凯), and Zhihua Chen(陈芝花). Estimating quantum coherence using limited quantum resources[J]. 中国物理B, 2026, 35(3): 30301-030301. |
| [4] | Peng-Yu Yang(杨鹏宇), Xin Zhang(张新), and Song Lin(林崧). Distributed Kuperberg's algorithm[J]. 中国物理B, 2026, 35(3): 30303-030303. |
| [5] | Kaimin Zheng(郑凯敏), Jifeng Sun(孙继峰), Liyun Hu(胡利云), and Lijian Zhang(张利剑). Quantum steering for two-mode states with continuous-variable in laser channel[J]. 中国物理B, 2026, 35(2): 20304-020304. |
| [6] | Wei-Qian Zhao(赵炜骞), Si-Nan Pang(庞斯楠), Zi-Fu Su(苏子富), Tian-Ming Zhao(赵天明), Jin-Dong Wang(王金东), and Ya-Fei Yu(於亚飞). Rigorous verification of quantum contextuality from anomalous weak value[J]. 中国物理B, 2026, 35(2): 20301-020301. |
| [7] | Tianyu Ruan(阮天雨), Bowen Kan(阚博文), Yixuan Sun(孙艺轩), Honghui Shang(商红慧), Shihua Zhang(张世华), and Jinlong Yang(杨金龙). Unveiling the physical meaning of transformer attention in neural network quantum states: A conditional mutual information perspective[J]. 中国物理B, 2026, 35(1): 10301-010301. |
| [8] | Qi-Cheng Wu(吴奇成), Yu-Liang Fang(方玉亮), Yan-Hui Zhou(周彦辉), Jun-Long Zhao(赵军龙), Yi-Hao Kang(康逸豪), Qi-Ping Su(苏奇平), and Chui-Ping Yang(杨垂平). Efficient and controlled symmetric and asymmetric Bell-state transfers in a dissipative Jaynes-Cummings model[J]. 中国物理B, 2026, 35(1): 10304-010304. |
| [9] | Fangzhou Jin(金芳洲), Ao Wang(王奥), Yunlan Ji(季云兰), Hui Zhou(周辉), and Jianpei Geng(耿建培). Superadiabatic stimulated Raman adiabatic passage between dressed states[J]. 中国物理B, 2026, 35(1): 10305-010305. |
| [10] | Kaitian Gao(高凯天), Youlong Yang(杨有龙), and Zhenye Du(杜振叶). Preparation of digital-encoded and analog-encoded quantum states corresponding to matrix operations[J]. 中国物理B, 2026, 35(1): 10202-010202. |
| [11] | Hong-Biao Li(李宏彪), Deng-Guo Kong(孔德国), Xue-Ping Chai(柴学平), Jin-Long Yu(余金龙), and Qiang Zheng(郑强). Dynamical evolution of imaginarity resources in non-Markovian environments[J]. 中国物理B, 2025, 34(11): 110309-110309. |
| [12] | Shu-Yuan Yang(杨舒媛), Kan He(贺衎), and Ming-Xing Luo(罗明星). Effect of quantum measurement errors on witnessing network topology[J]. 中国物理B, 2025, 34(9): 90302-090302. |
| [13] | Shizhuo Li(李世卓), Xin Liu(刘馨), Zhenrong Zhang(张振荣), and Kejin Wei(韦克金). Mode-pairing quantum key distribution with multi-step advantage distillation[J]. 中国物理B, 2025, 34(9): 90307-090307. |
| [14] | Li-Qiang Zhang(张立强), Yan-Dong Du(杜彦东), and Chang-Shui Yu(于长水). Optimal convex approximations of qubit states based on l1-norm of coherence[J]. 中国物理B, 2025, 34(8): 80302-080302. |
| [15] | Zhenhua Long(龙振华) and Shengshi Pang(庞盛世). Optimal multi-parameter quantum metrology for frequencies of magnetic field[J]. 中国物理B, 2025, 34(8): 80301-080301. |
|
||