Practical overview of image classification with tensor-network quantum circuits

Author:

Guala Diego,Zhang Shaoming,Cruz Esther,Riofrío Carlos A.,Klepsch Johannes,Arrazola Juan Miguel

Abstract

AbstractCircuit design for quantum machine learning remains a formidable challenge. Inspired by the applications of tensor networks across different fields and their novel presence in the classical machine learning context, one proposed method to design variational circuits is to base the circuit architecture on tensor networks. Here, we comprehensively describe tensor-network quantum circuits and how to implement them in simulations. This includes leveraging circuit cutting, a technique used to evaluate circuits with more qubits than those available on current quantum devices. We then illustrate the computational requirements and possible applications by simulating various tensor-network quantum circuits with PennyLane, an open-source python library for differential programming of quantum computers. Finally, we demonstrate how to apply these circuits to increasingly complex image processing tasks, completing this overview of a flexible method to design circuits that can be applied to industrially-relevant machine learning tasks.

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Advances in Quantum Machine Learning and Deep Learning for Image Classification: A Survey;Neurocomputing;2023-12

2. Application-Oriented Benchmarking of Quantum Generative Learning Using QUARK;2023 IEEE International Conference on Quantum Computing and Engineering (QCE);2023-09-17

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