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Adaptive variational quantum dynamics simulations with compressed circuits and fewer measurements

作者:Feng Zhang, Cai‐Zhuang Wang, Thomas Iadecola, Peter P. Orth, Yongxin Yao · 发表于:Physical review. B./Physical review. B · 年份:2025 · DOI:10.1103/physrevb.111.094310 · 被引用次数:5 · 研究领域:Quantum Computing Algorithms and Architecture、Quantum Information and Cryptography、Quantum Mechanics and Applications

The adaptive variational quantum dynamics simulation (AVQDS) method performs real-time evolution of quantum states using automatically generated parametrized quantum circuits that often contain substantially fewer gates than Trotter circuits. Here we report an improved version of the method, which we call AVQDS(T), by porting the tiling efficient trial circuits with rotations implemented simultaneously technique. The algorithm adaptively adds layers of disjoint unitary gates to the ansatz circuit so as to keep the McLachlan distance, a measure of the accuracy of the variational dynamics, below a fixed threshold. We perform benchmark noiseless AVQDS(T) simulations of quench dynamics in local spin models and compare with an alternative adaptive variational approach on quantum resource requirement. Quantum dynamical simulations implementing realistic noise channels are also reported. Finally, we propose a way to substantially alleviate the measurement overhead of AVQDS(T) while maintaining high accuracy by synergistically integrating quantum circuit calculations on quantum processing units with classical calculations using, e.g., tensor networks to evaluate the quantum geometric tensor. We showcase that this approach enables AVQDS(T) to deliver more accurate results than simulations using a fixed ansatz of comparable final depth for a significant time duration with fewer quantum resources.