Communication Over Quantum Channels With Parameter Estimation

被引:12
|
作者
Pereg, Uzi [1 ]
机构
[1] Tech Univ Munich, Inst Commun Engn, D-80333 Munich, Germany
关键词
Quantum channels; Decoding; Watermarking; Quantum mechanics; Channel estimation; Channel coding; Quantum state; Quantum communication; Shannon theory; state estimation; rate-and-state channel; bosonic channel; writing on dirty paper; encoding constraints; ENTANGLEMENT-ASSISTED CAPACITY; CLASSICAL-QUANTUM; SIDE INFORMATION;
D O I
10.1109/TIT.2021.3123221
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Communication over a random-parameter quantum channel when the decoder is required to reconstruct the parameter sequence is considered. We study scenarios that include either strictly-causal, causal, or non-causal channel side information (CSI) available at the encoder, and also when CSI is not available. This model can be viewed as a form of quantum metrology, and as the quantum counterpart of the classical rate-and-state channel with state estimation at the decoder. Regularized formulas for the capacity-distortion regions are derived. In the special case of measurement channels, single-letter characterizations are derived for the strictly-causal and causal settings. Furthermore, in the more general case of entanglement-breaking channels, a single-letter characterization is derived when CSI is not available. As a consequence, we obtain regularized formulas for the capacity of random-parameter quantum channels with CSI, generalizing previous results by Boche et al., 2016, on classical-quantum channels. Bosonic dirty paper coding is introduced as a consequence, where we demonstrate that the optimal coefficient is not necessarily that of minimum mean-square error estimation as in the classical setting.
引用
收藏
页码:359 / 383
页数:25
相关论文
共 50 条
  • [21] Joint space-time parameter estimation for wireless communication channels
    Clarity Wireless, Belmont, United States
    IEEE Trans Signal Process, 5 (1333-1343):
  • [22] Joint space-time parameter estimation for wireless communication channels
    Raleigh, GG
    Boros, T
    IEEE TRANSACTIONS ON SIGNAL PROCESSING, 1998, 46 (05) : 1333 - 1343
  • [23] Secure state estimation over Markov wireless communication channels
    Impicciatore, Anastasia
    Tsiamis, Anastasios
    Lun, Yuriy Zacchia
    D'Innocenzo, Alessandro
    Pappas, George J.
    2022 IEEE 61ST CONFERENCE ON DECISION AND CONTROL (CDC), 2022, : 2935 - 2940
  • [24] Optimal state estimation over communication channels with random delays
    Mahmoud, Magdi S.
    Liu, Bo
    JOURNAL OF THE FRANKLIN INSTITUTE-ENGINEERING AND APPLIED MATHEMATICS, 2013, 350 (03): : 598 - 616
  • [25] Moderate Deviation Analysis for Classical Communication over Quantum Channels
    Christopher T. Chubb
    Vincent Y. F. Tan
    Marco Tomamichel
    Communications in Mathematical Physics, 2017, 355 : 1283 - 1315
  • [26] Moderate Deviation Analysis for Classical Communication over Quantum Channels
    Chubb, Christopher T.
    Tan, Vincent Y. F.
    Tomamichel, Marco
    COMMUNICATIONS IN MATHEMATICAL PHYSICS, 2017, 355 (03) : 1283 - 1315
  • [27] A meta-converse for private communication over quantum channels
    Wilde, Mark M.
    Tomamichel, Marco
    Berta, Mario
    2017 IEEE INTERNATIONAL SYMPOSIUM ON INFORMATION THEORY (ISIT), 2017, : 291 - 295
  • [28] Polar Codes for Private and Quantum Communication Over Arbitrary Channels
    Renes, Joseph M.
    Wilde, Mark M.
    IEEE TRANSACTIONS ON INFORMATION THEORY, 2014, 60 (06) : 3090 - 3103
  • [29] Decoherence-Free Communication over Multiaccess Quantum Channels
    Demianowicz, Maciej
    OPEN SYSTEMS & INFORMATION DYNAMICS, 2013, 20 (02):
  • [30] Converse bounds for classical communication over quantum broadcast channels and quantum multi-access channels
    Xie, Wei
    Wang, Xin
    Duan, Runyao
    2018 IEEE INTERNATIONAL SYMPOSIUM ON INFORMATION THEORY (ISIT), 2018, : 2341 - 2345