Quantum learning advantage on a scalable photonic platform.

Liu, Zheng-Hao; Brunel, Romain; Østergaard, Emil E B; Cordero, Oscar; Chen, Senrui; Wong, Yat; Nielsen, Jens A H; Bregnsbo, Axel B et al. · Science · 2025

basic_science · Level V

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Abstract

Recent advances in quantum technologies have demonstrated that quantum systems can outperform classical ones in specific tasks, a concept known as quantum advantage. Although previous efforts have focused on computational speedups, a definitive and provable quantum advantage that is unattainable by any classical system has remained elusive. In this work, we demonstrate a provable photonic quantum advantage by implementing a quantum-enhanced protocol for learning a high-dimensional physical process. Using imperfect Einstein-Podolsky-Rosen entanglement, we achieve a sample complexity reduction of 11.8 orders of magnitude compared to classical methods without entanglement. These results show that large-scale, provable quantum advantage is achievable with current photonic technology and represent a key step toward practical quantum-enhanced learning protocols in quantum metrology and machine learning.