arrow
Return

Sample-efficient model-based reinforcement learning for quantum control

delete2023-10-02
delete5
delete
OA
AI
I
Irtaza Khalid *
C
Carrie A. Weidner
E
Edmond Jonckheere
S
S. G. Schirmer
F
Frank C. Langbein
DOI:10.1103/PhysRevResearch.5.043002delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
We propose a model-based reinforcement learning (RL) approach for noisy time-dependent gate optimization with reduced sample complexity over model-free RL. Sample complexity is defined as the number of controller interactions with the physical system. Leveraging an inductive bias, inspired by recent advances in neural ordinary differential equations (ODEs), we use an autodifferentiable ODE, parametrized by a learnable Hamiltonian ansatz, to represent the model approximating the environment, whose time-dependent part, including the control, is fully known. Control alongside Hamiltonian learning of continuous time-independent parameters is addressed through interactions with the system. We demonstrate an order of magnitude advantage in sample complexity of our method over standard model-free RL in preparing some standard unitary gates with closed and open system dynamics, in realistic computational experiments incorporating single-shot measurements, arbitrary Hilbert space truncations, and uncertainty in Hamiltonian parameters. Also, the learned Hamiltonian can be leveraged by existing control methods like GRAPE (gradient ascent pulse engineering) for further gradient-based optimization with the controllers found by RL as initializations. Our algorithm, which we apply to nitrogen vacancy (NV) centers and transmons, is well suited for controlling partially characterized one- and two-qubit systems.

Journal

Physical Review Research cover
Physical Review Research
IF:
4.2
Papers:
7.6K
Citations:
2.7W

Organization

U
university of southern california
Scholars:
4.6W
Papers: 3.8W
Citations: 51
S
Swansea University
Scholars:
8.3K
Papers: 8.6K
Citations: 1.3W
C
Cardiff University
Scholars:
2.7W
Papers: 2.5W
Citations: 3.5W
U
University of Bristol
Scholars:
3.1W
Papers: 3.0W
Citations: 5.3W
researcher View more organizations