QUANT-PHAILGNENov 24, 2025

Neural Architecture Search for Quantum Autoencoders

arXiv:2511.19246v12 citations
Originality Incremental advance
AI Analysis

This work addresses the problem of automating quantum autoencoder design for researchers in quantum machine learning, representing an incremental advancement by applying existing NAS methods to quantum circuits.

The paper tackles the challenge of designing effective quantum circuit architectures for quantum autoencoders by proposing a neural architecture search framework using a genetic algorithm to automate the process, demonstrating its effectiveness on image datasets for data reconstruction.

In recent years, machine learning and deep learning have driven advances in domains such as image classification, speech recognition, and anomaly detection by leveraging multi-layer neural networks to model complex data. Simultaneously, quantum computing (QC) promises to address classically intractable problems via quantum parallelism, motivating research in quantum machine learning (QML). Among QML techniques, quantum autoencoders show promise for compressing high-dimensional quantum and classical data. However, designing effective quantum circuit architectures for quantum autoencoders remains challenging due to the complexity of selecting gates, arranging circuit layers, and tuning parameters. This paper proposes a neural architecture search (NAS) framework that automates the design of quantum autoencoders using a genetic algorithm (GA). By systematically evolving variational quantum circuit (VQC) configurations, our method seeks to identify high-performing hybrid quantum-classical autoencoders for data reconstruction without becoming trapped in local minima. We demonstrate effectiveness on image datasets, highlighting the potential of quantum autoencoders for efficient feature extraction within a noise-prone, near-term quantum era. Our approach lays a foundation for broader application of genetic algorithms to quantum architecture search, aiming for a robust, automated method that can adapt to varied data and hardware constraints.

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