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Enhanced feature encoding and classification on distributed quantum hardware

delete2025-02-28
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OA
AI
R
Roberto Moretti *
A
A. Giachero
R
Radescu, V
M
Michele Grossi
DOI:10.1088/2632-2153/adb4bcdelete
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Abstract

Abstract

En 中文
The steady progress of quantum hardware is motivating the search for novel quantum algorithm optimization strategies for near-term, real-world applications. In this study, we propose a novel feature map optimization strategy for quantum support vector machines (QSVMs), designed to enhance binary classification while taking into account backend-specific parameters, including qubit connectivity, native gate sets, and circuit depth, which are critical factors in noisy intermediate scale quantum devices. The dataset we utilised belongs to the neutrino physics domain, with applications in the search for neutrinoless double beta decay. A key contribution of this work is the parallelization of the classification task to commercially available superconducting quantum hardware to speed up the genetic search processes. The study was carried out by partitioning each quantum processing unit (QPU) into several sub-units with the same topology to implement individual QSVM instances. We conducted parallelization experiments with three IBM backends with more than 100 qubits, ranking the sub-units based on their susceptibility to noise. Data-driven simulations show how, under certain restrictions, parallelized genetic optimization can occur with the tested devices when retaining the top 20% ranked sub-units in the QPU.
Keywords:
quantum computing
quantum feature maps
neutrino physics
genetic algorithms
QSVM

Journal

M
Machine Learning-Science and Technology
IF:
4.6
Papers:
1.1K
Citations:
3.4K

Organization

U
university of milano-bicocca
Scholars:
2.0W
Papers: 1.5W
Citations: 22