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Tariq Mahmood

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#machine learning Preprint Aug 2026

Comparing Classical and Quantum Machine Learning for Regression in High Energy Physics Collision Data

A systematic comparison of four classical machine learning architectures, support vector machines, artificial neural networks, convolutional neural networks, and long short-term memory networks against their quantum counterparts against their quantum counterparts characterize the trade-offs between classical and quantum approaches under realistic, resource-constrained conditions and provide a benchmark for future studies on actual quantum hardware.

Tariq Mahmood, Z. Abidin, Itzel Luviano Soto et al. · 0 citations