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quant-ph2026

Scalable Quantum Machine Learning via Multi-layer Fully-Connected Variational Quantum Circuits

Howard Su, Chen-Yu Liu, Samuel Yen-Chi Chen +2

Variational Quantum Circuits (VQC) are promising models for quantum machine learning, but standard monolithic architectures face an expressivity--trainability dilemma: small circui…

quant-ph2025

Establishing Baselines for Photonic Quantum Machine Learning: Insights from an Open, Collaborative Initiative

Cassandre Notton, Vassilis Apostolou, Agathe Senellart +28

The Perceval Challenge is an open, reproducible benchmark designed to assess the potential of photonic quantum computing for machine learning. Focusing on a reduced and hardware-fe…

quant-ph2025

Quantum Relational Knowledge Distillation

Chen-Yu Liu, Kuan-Cheng Chen, Keisuke Murota +2

Knowledge distillation (KD) is a widely adopted technique for compressing large models into smaller, more efficient student models that can be deployed on devices with limited comp…

quant-ph2025

Quantum-Enhanced Parameter-Efficient Learning for Typhoon Trajectory Forecasting

Chen-Yu Liu, Kuan-Cheng Chen, Yi-Chien Chen +4

Typhoon trajectory forecasting is essential for disaster preparedness but remains computationally demanding due to the complexity of atmospheric dynamics and the resource requireme…

quant-ph2025

Differentiable Quantum Architecture Search in Quantum-Enhanced Neural Network Parameter Generation

Samuel Yen-Chi Chen, Chen-Yu Liu, Kuan-Cheng Chen +3

The rapid advancements in quantum computing (QC) and machine learning (ML) have led to the emergence of quantum machine learning (QML), which integrates the strengths of both field…

quant-ph2025

Learning to Learn with Quantum Optimization via Quantum Neural Networks

Kuan-Cheng Chen, Hiromichi Matsuyama, Wei-Hao Huang

Quantum Approximate Optimization Algorithms (QAOA) promise efficient solutions to classically intractable combinatorial optimization problems by harnessing shallow-depth quantum ci…