T. Mendes-Santos
Wave-Function Network Description and Kolmogorov Complexity of Quantum Many-Body Systems
Mendes-Santos, T.; Schmitt, M.; Angelone, A.; Rodriguez, A.; Scholl, P.; Williams, H. J.; Barredo, D.; Lahaye, T.; Browaeys, A.; Heyl, M.; Dalmonte, M.
Authors
M. Schmitt
A. Angelone
A. Rodriguez
P. Scholl
Dr Hannah Williams hannah.williams4@durham.ac.uk
Associate Professor
D. Barredo
T. Lahaye
A. Browaeys
M. Heyl
M. Dalmonte
Abstract
Programmable quantum devices are now able to probe wave functions at unprecedented levels. This is based on the ability to project the many-body state of atom and qubit arrays onto a measurement basis which produces snapshots of the system wave function. Extracting and processing information from such observations remains, however, an open quest. One often resorts to analyzing low-order correlation functions—that is, discarding most of the available information content. Here, we introduce wave-function networks—a mathematical framework to describe wave-function snapshots based on network theory. For many-body systems, these networks can become scale-free—a mathematical structure that has found tremendous success and applications in a broad set of fields, ranging from biology to epidemics to Internet science. We demonstrate the potential of applying these techniques to quantum science by introducing protocols to extract the Kolmogorov complexity corresponding to the output of a quantum simulator and implementing tools for fully scalable cross-platform certification based on similarity tests between networks. We demonstrate the emergence of scale-free networks analyzing experimental data obtained with a Rydberg quantum simulator manipulating up to 100 atoms. Our approach illustrates how, upon crossing a phase transition, the simulator complexity decreases while correlation length increase —a direct signature of buildup of universal behavior in data space. Comparing experiments with numerical simulations, we achieve cross-certification at the wave-function level up to timescales of 4 μs with a confidence level of 90% and determine experimental calibration intervals with unprecedented accuracy. Our framework is generically applicable to the output of quantum computers and simulators with in situ access to the system wave function and requires probing accuracy and repetition rates accessible to most currently available platforms.
Citation
Mendes-Santos, T., Schmitt, M., Angelone, A., Rodriguez, A., Scholl, P., Williams, H., …Dalmonte, M. (2024). Wave-Function Network Description and Kolmogorov Complexity of Quantum Many-Body Systems. Physical Review X, 14(2), Article 021029. https://doi.org/10.1103/physrevx.14.021029
Journal Article Type | Article |
---|---|
Acceptance Date | Apr 17, 2024 |
Online Publication Date | May 21, 2024 |
Publication Date | May 21, 2024 |
Deposit Date | Jul 8, 2024 |
Publicly Available Date | Jul 8, 2024 |
Journal | Physical Review X |
Publisher | American Physical Society |
Peer Reviewed | Peer Reviewed |
Volume | 14 |
Issue | 2 |
Article Number | 021029 |
DOI | https://doi.org/10.1103/physrevx.14.021029 |
Public URL | https://durham-repository.worktribe.com/output/2521888 |
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Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI.
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