Role of coherence in many-body Quantum Reservoir Computing

被引:0
|
作者
Palacios, Ana [1 ,2 ,3 ]
Martinez-Pena, Rodrigo [4 ,5 ]
Soriano, Miguel C. [4 ]
Giorgi, Gian Luca [4 ]
Zambrini, Roberta [4 ]
机构
[1] Qilimanjaro Quantum Tech, Barcelona 08007, Spain
[2] Univ Barcelona, Dept Fis Quant & Astrofis, Fac Fis, Barcelona 08028, Spain
[3] Univ Barcelona, Inst Ciencies Cosmos, Barcelona 08028, Spain
[4] Campus Univ Illes Balears, Inst Fis Interdisciplinar & Sistemas Complejos IFI, UIB, CSIC, Palma De Mallorca, Spain
[5] Donostia Int Phys Ctr, San Sebastian, Spain
来源
COMMUNICATIONS PHYSICS | 2024年 / 7卷 / 01期
关键词
Ising model;
D O I
10.1038/s42005-024-01859-4
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Quantum Reservoir Computing (QRC) offers potential advantages over classical reservoir computing, including inherent processing of quantum inputs and a vast Hilbert space for state exploration. Yet, the relation between the performance of reservoirs based on complex and many-body quantum systems and non-classical state features is not established. Through an extensive analysis of QRC based on a transverse-field Ising model we show how different quantum effects, such as quantum coherence and correlations, contribute to improving the performance in temporal tasks, as measured by the Information Processing Capacity. Additionally, we critically assess the impact of finite measurement resources and noise on the reservoir's dynamics in different regimes, quantifying the limited ability to exploit quantum effects for increasing damping and noise strengths. Our results reveal a monotonic relationship between reservoir performance and coherence, along with the importance of quantum effects in the ergodic regime. Quantum Reservoir Computing leverages the quantum properties of physical systems for solving temporal tasks. This study shows the importance of quantum effects, such as coherence and superposition, in the reservoir's performance for different dynamical regimes, while considering the impact of finite measurements and noisy environments.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Many-body physics and quantum chaos
    Ullmo, Denis
    REPORTS ON PROGRESS IN PHYSICS, 2008, 71 (02)
  • [32] Orthogonal Quantum Many-Body Scars
    Zhao, Hongzheng
    Smith, Adam
    Mintert, Florian
    Knolle, Johannes
    PHYSICAL REVIEW LETTERS, 2021, 127 (15)
  • [33] QUANTUM SCALING IN MANY-BODY SYSTEMS
    CONTINENTINO, MA
    PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 1994, 239 (03): : 179 - 213
  • [34] Dynamics of many-body quantum synchronisation
    Davis-Tilley, C.
    Teoh, C. K.
    Armour, A. D.
    NEW JOURNAL OF PHYSICS, 2018, 20
  • [35] Many-body localized quantum batteries
    Rossini, Davide
    Andolina, Gian Marcello
    Polini, Marco
    PHYSICAL REVIEW B, 2019, 100 (11)
  • [36] Quantum dots and the many-body problem
    Weidenmüller, HA
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2001, 15 (10-11): : 1389 - 1403
  • [37] Many-body quantum interference on hypercubes
    Dittel, Christoph
    Keil, Robert
    Weihs, Gregor
    QUANTUM SCIENCE AND TECHNOLOGY, 2017, 2 (01):
  • [38] Many-body quantum thermal machines
    Mukherjee, Victor
    Divakaran, Uma
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2021, 33 (45)
  • [39] Disorder in Quantum Many-Body Systems
    Vojta, Thomas
    ANNUAL REVIEW OF CONDENSED MATTER PHYSICS, VOL 10, 2019, 10 (01): : 233 - 252
  • [40] SYNTHETIC QUANTUM MANY-BODY SYSTEMS
    Guerlin, C.
    Baumann, K.
    Brennecke, F.
    Greif, D.
    Joerdens, R.
    Leinss, S.
    Strohmaier, N.
    Tarruell, L.
    Uehlinger, T.
    Moritz, H.
    Esslinger, T.
    LASER SPECTROSCOPY, 2010, : 212 - 221