Shang Honghui, Fan Yi, Shen Li, Guo Chu, Liu Jie, Duan Xiaohui, Li Fang, Li Zhenyu
Institute of Computing Technology, Chinese Academy of Sciences, Beijing, China.
Hefei National Laboratory, University of Science and Technology of China, Hefei, China.
npj Quantum Inf. 2023;9(1):33. doi: 10.1038/s41534-023-00696-7. Epub 2023 Apr 7.
Quantum computing is moving beyond its early stage and seeking for commercial applications in chemical and biomedical sciences. In the current noisy intermediate-scale quantum computing era, the quantum resource is too scarce to support these explorations. Therefore, it is valuable to emulate quantum computing on classical computers for developing quantum algorithms and validating quantum hardware. However, existing simulators mostly suffer from the memory bottleneck so developing the approaches for large-scale quantum chemistry calculations remains challenging. Here we demonstrate a high-performance and massively parallel variational quantum eigensolver (VQE) simulator based on matrix product states, combined with embedding theory for solving large-scale quantum computing emulation for quantum chemistry on HPC platforms. We apply this method to study the torsional barrier of ethane and the quantification of the protein-ligand interactions. Our largest simulation reaches 1000 qubits, and a performance of 216.9 PFLOP/s is achieved on a new Sunway supercomputer, which sets the state-of-the-art for quantum computing emulation for quantum chemistry.
量子计算正迈过其早期阶段,并在化学和生物医学科学领域寻求商业应用。在当前嘈杂的中尺度量子计算时代,量子资源过于稀缺,无法支持这些探索。因此,在经典计算机上模拟量子计算以开发量子算法和验证量子硬件具有重要价值。然而,现有的模拟器大多存在内存瓶颈,所以开发大规模量子化学计算方法仍然具有挑战性。在此,我们展示了一种基于矩阵乘积态的高性能、大规模并行变分量子本征求解器(VQE)模拟器,并结合嵌入理论,用于在高性能计算(HPC)平台上解决大规模量子化学的量子计算模拟问题。我们将此方法应用于研究乙烷的扭转势垒以及蛋白质 - 配体相互作用的量化。我们最大规模的模拟达到了1000个量子比特,并且在一台新的神威超级计算机上实现了216.9万亿次浮点运算每秒(PFLOP/s)的性能,这为量子化学的量子计算模拟设定了当前的最高水平。