Bulletin of the American Physical Society
APS March Meeting 2018
Volume 63, Number 1
Monday–Friday, March 5–9, 2018; Los Angeles, California
Session L47: Optimizing the Dynamics of Quantum Measurement and Control
11:15 AM–2:15 PM,
Wednesday, March 7, 2018
LACC
Room: 507
Sponsoring
Unit:
DQI
Chair: Christian Arenz, Princeton University
Abstract ID: BAPS.2018.MAR.L47.7
Abstract: L47.00007 : Experimental quantum Hamiltonian learning
12:27 PM–12:39 PM
Presenter:
Jianwei Wang
(Quantum Engineering Technology Labs, Univerisity of Bristol)
Authors:
Jianwei Wang
(Quantum Engineering Technology Labs, Univerisity of Bristol)
Stefano Paesani
(Quantum Engineering Technology Labs, Univerisity of Bristol)
Raffaele Santagati
(Quantum Engineering Technology Labs, Univerisity of Bristol)
Sebastian Knauer
(Quantum Engineering Technology Labs, Univerisity of Bristol)
Antonio Gentile
(Quantum Engineering Technology Labs, Univerisity of Bristol)
Nathan Wiebe
(Quantum Architectures and Computation Group, Microsoft Research)
Maurangelo Petruzzella
( Eindhoven University of Technology)
Jeremy O’Brien
(Quantum Engineering Technology Labs, Univerisity of Bristol)
John Rarity
(Quantum Engineering Technology Labs, Univerisity of Bristol)
Anthony Laing
(Quantum Engineering Technology Labs, Univerisity of Bristol)
Mark Thompson
(Quantum Engineering Technology Labs, Univerisity of Bristol)
Our experimental demonstration of QHL uses a programmable silicon-photonics quantum simulator to learn the electron spin dynamics of a nitrogen-vacancy centre in diamond. The spin is optically addressed and read-out and manipluated by microwave signals. The dynamics can be described using a Hamiltonian model fσx/2. The photonic chip allows to simulate the dynamics of the spin and to calculate the QHL likelihoods. The two quantum systems are interfaced through a classical processor drives the QHL protocol. The goal is to learn the Rabi frequency f of the spin system. We show the successful convergence of the QHL, with a learned f=6.93±0.09 MHz consistent with that obtained from the standard methods.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.MAR.L47.7
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