Provably Trainable Rotationally Equivariant Quantum Machine Learning

Fuente: arXiv
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Autori principali: West, Maxwell T., Heredge, Jamie, Sevior, Martin, Usman, Muhammad
Natura: Preprint
Pubblicazione: 2023
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author West, Maxwell T.
Heredge, Jamie
Sevior, Martin
Usman, Muhammad
author_facet West, Maxwell T.
Heredge, Jamie
Sevior, Martin
Usman, Muhammad
contents Exploiting the power of quantum computation to realise superior machine learning algorithmshas been a major research focus of recent years, but the prospects of quantum machine learning (QML) remain dampened by considerable technical challenges. A particularly significant issue is that generic QML models suffer from so-called barren plateaus in their training landscapes -- large regions where cost function gradients vanish exponentially in the number of qubits employed, rendering large models effectively untrainable. A leading strategy for combating this effect is to build problem-specific models which take into account the symmetries of their data in order to focus on a smaller, relevant subset of Hilbert space. In this work, we introduce a family of rotationally equivariant QML models built upon the quantum Fourier transform, and leverage recent insights from the Lie-algebraic study of QML models to prove that (a subset of) our models do not exhibit barren plateaus. In addition to our analytical results we numerically test our rotationally equivariant models on a dataset of simulated scanning tunnelling microscope images of phosphorus impurities in silicon, where rotational symmetry naturally arises, and find that they dramatically outperform their generic counterparts in practice.
format Preprint
id arxiv_https___arxiv_org_abs_2311_05873
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Provably Trainable Rotationally Equivariant Quantum Machine Learning
West, Maxwell T.
Heredge, Jamie
Sevior, Martin
Usman, Muhammad
Quantum Physics
Exploiting the power of quantum computation to realise superior machine learning algorithmshas been a major research focus of recent years, but the prospects of quantum machine learning (QML) remain dampened by considerable technical challenges. A particularly significant issue is that generic QML models suffer from so-called barren plateaus in their training landscapes -- large regions where cost function gradients vanish exponentially in the number of qubits employed, rendering large models effectively untrainable. A leading strategy for combating this effect is to build problem-specific models which take into account the symmetries of their data in order to focus on a smaller, relevant subset of Hilbert space. In this work, we introduce a family of rotationally equivariant QML models built upon the quantum Fourier transform, and leverage recent insights from the Lie-algebraic study of QML models to prove that (a subset of) our models do not exhibit barren plateaus. In addition to our analytical results we numerically test our rotationally equivariant models on a dataset of simulated scanning tunnelling microscope images of phosphorus impurities in silicon, where rotational symmetry naturally arises, and find that they dramatically outperform their generic counterparts in practice.
title Provably Trainable Rotationally Equivariant Quantum Machine Learning
topic Quantum Physics
url https://arxiv.org/abs/2311.05873