Bulletin of the American Physical Society
APS March Meeting 2018
Volume 63, Number 1
Monday–Friday, March 5–9, 2018; Los Angeles, California
Session A32: Machine Learning in Classical and Quantum Many-body Physics
8:00 AM–11:00 AM,
Monday, March 5, 2018
LACC
Room: 408A
Sponsoring
Units:
DCOMP DCMP
Chair: Lei Wang, Chinese Academy of Sciences
Abstract ID: BAPS.2018.MAR.A32.2
Abstract: A32.00002 : Neural-network Quantum States*
8:36 AM–9:12 AM
Presenter:
Giuseppe Carleo
(ITP, ETH Zurich)
Authors:
Giuseppe Carleo
(ITP, ETH Zurich)
Matthias Troyer
(ITP, ETH Zurich)
Giacomo Torlai
(University of Waterloo)
Roger Melko
(University of Waterloo)
Juan Carrasquilla
(D-Wave INC)
Guglielmo Mazzola
(ITP, ETH Zurich)
In this seminar I will present recent applications to quantum physics. First, I will discuss how a systematic machine learning of the many-body wave-function can be realized. This goal has been achieved in [1], introducing a variational representation of quantum states based on artificial neural networks. In conjunction with Monte Carlo schemes, this representation can be used to study both ground-state and unitary dynamics, with controlled accuracy. Moreover, I will show how a similar representation can be used to perform efficient Quantum State Tomography on highly-entangled states [4], previously inaccessible to state-of-the art tomographic approaches.
[1] Carleo, and Troyer -- Science 355, 602 (2017).
[2] Carrasquilla, and Melko -- Nat. Physics doi:10.1038/nphys4035 (2017)
[3] van Nieuwenburg, Liu, and Huber -- Nat. Physics doi:10.1038/nphys4037 (2017)
[4] Torlai, Mazzola, Carrasquilla, Troyer, Melko, and Carleo -- arXiv:1703.05334 (2017)
*Work supported by the European Research Council through ERC Advanced Grant SIMCOFE, by the Swiss National Science Foundation through NCCR QSIT, by Microsoft Research, by ODNI, IARPA via MIT Lincoln Laboratory Air Force Contract No. FA8721-05- C-0002.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.MAR.A32.2
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