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    High-Accuracy Temporal Prediction via Experimental Quantum Reservoir Computing in Correlated Spins

    Yanjun Hou1,*, Juncheng Hua1,2,*, Ze Wu1,3, Wei Xia3, Yuquan Chen1, Xiaopeng Li4,5,6,7,†, Zhaokai Li1,2,7,‡, Xinhua Peng1,2,7,§, and Jiangfeng Du8,∥

    • *These authors contributed equally to this work.
    • †Contact author: xiaopeng_li@fudan.edu.cn
    • ‡Contact author: zkli@ustc.edu.cn
    • §Contact author: xhpeng@ustc.edu.cn
    • ∥Contact author: djf@ustc.edu.cn

    Phys. Rev. Lett. 136, 120602 – Published 25 March, 2026

    DOI: https://doi.org/10.1103/r8ww-qw7j

    Abstract

    Physical reservoir computing provides a powerful machine learning paradigm that exploits nonlinear physical dynamics for efficient information processing. By incorporating quantum effects, quantum reservoir computing offers superior potential for machine learning applications, as quantum dynamics are exponentially costly to simulate classically. Here, we present a novel quantum reservoir computing approach based on correlated quantum spin systems, exploiting natural quantum many-body interactions to generate reservoir dynamics, thereby circumventing the practical challenges of deep quantum circuits. Our experimental implementation supports nontrivial quantum entanglement and exhibits sufficient dynamical complexity for high-performance machine learning. We achieve state-of-the-art performance in experiments on standard time-series benchmarks, reducing prediction error by 1 to 2 orders of magnitude compared to previous quantum reservoir experiments. In long-term weather forecasting, our 9-spin quantum reservoir delivers greater prediction accuracy than classical reservoirs with thousands of nodes. This represents the first experimental demonstration of quantum machine learning outperforming large-scale classical models on real-world tasks.

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