A study on B-cell epitope prediction based on QSVM and VQC

Fuente: arXiv
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Hauptverfasser: Hwang, Chi-Chuan, Hong, Yi-Ang
Format: Preprint
Veröffentlicht: 2025
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author Hwang, Chi-Chuan
Hong, Yi-Ang
author_facet Hwang, Chi-Chuan
Hong, Yi-Ang
contents This study investigates quantum computing's role in B-cell epitope prediction using Quantum Support Vector Machine (QSVM) and Variational Quantum Classifier (VQC). It highlights the potential of quantum machine learning in bioinformatics, addressing computational efficiency limitations of traditional methods as data complexity grows. QSVM uses quantum kernel functions for data mapping, while VQC employs parameterized quantum circuits for classification. Results show QSVM and VQC achieving 70% and 73% accuracy, respectively, with QSVM excelling in balancing classes. Despite challenges like computational demands and hardware limitations, quantum methods show promise, suggesting future improvements with ongoing advancements.
format Preprint
id arxiv_https___arxiv_org_abs_2504_11846
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A study on B-cell epitope prediction based on QSVM and VQC
Hwang, Chi-Chuan
Hong, Yi-Ang
Quantum Physics
This study investigates quantum computing's role in B-cell epitope prediction using Quantum Support Vector Machine (QSVM) and Variational Quantum Classifier (VQC). It highlights the potential of quantum machine learning in bioinformatics, addressing computational efficiency limitations of traditional methods as data complexity grows. QSVM uses quantum kernel functions for data mapping, while VQC employs parameterized quantum circuits for classification. Results show QSVM and VQC achieving 70% and 73% accuracy, respectively, with QSVM excelling in balancing classes. Despite challenges like computational demands and hardware limitations, quantum methods show promise, suggesting future improvements with ongoing advancements.
title A study on B-cell epitope prediction based on QSVM and VQC
topic Quantum Physics
url https://arxiv.org/abs/2504.11846