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A framework for demonstrating practical quantum advantage: comparing quantum against classical generative models

Computer Science

A framework for demonstrating practical quantum advantage: comparing quantum against classical generative models

M. Hibat-allah, M. Mauri, et al.

Discover groundbreaking insights into the comparative performance of quantum and classical generative models in this innovative study by Mohamed Hibat-Allah, Marta Mauri, Juan Carrasquilla, and Alejandro Perdomo-Ortiz. This research introduces a robust framework to ascertain practical quantum advantage, revealing the efficiency of Quantum Circuit Born Machines in data-limited scenarios—an essential characteristic for real-world applications facing data scarcity.

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~3 min • Beginner • English
Abstract
Generative modeling has seen a rising interest in both classical and quantum machine learning, and it represents a promising candidate to obtain a practical quantum advantage in the near term. In this study, we build over an existing framework for evaluating the generalization performance of generative models, and we establish the first quantitative comparative race towards practical quantum advantage (PQA) between classical and quantum generative models, namely Quantum Circuit Born Machines (QCBMs), Transformers (TFs), Recurrent Neural Networks (RNNs), Variational Autoencoders (VAEs), and Wasserstein Generative Adversarial Networks (WGANs). After defining four types of PQAs scenarios, we focus on what we refer to as potential PQA, aiming to compare quantum models with the best-known classical algorithms for the task at hand. We let the models race on a well-defined and application-relevant competition setting, where we illustrate and demonstrate our framework on 20 variables (qubits) generative modeling task. Our results suggest that QCBMs are more efficient in the data-limited regime than the other state-of-the-art classical generative models. Such a feature is highly desirable in a wide range of real-world applications where the available data is scarce.
Publisher
Communications Physics
Published On
Feb 28, 2024
Authors
Mohamed Hibat-Allah, Marta Mauri, Juan Carrasquilla, Alejandro Perdomo-Ortiz
Tags
quantum models
classical models
generative models
Quantum Circuit Born Machines
data efficiency
practical quantum advantage
model comparison
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