水准点(测量)
量子位元
计算机科学
量子
并行计算
量子计算机
物理
量子力学
大地测量学
地理
作者
Dongxin Gao,Daojin Fan,Chen Zha,Bei Jiang,Guoqing Cai,J. W. Cai,Sirui Cao,Xiangdong Zeng,Fusheng Chen,Chen Jiang,Kefu Chen,Xiawei Chen,Xiqing Chen,Zhe Chen,Zhiyuan Chen,Zihua Chen,Wenhao Chu,Hui Deng,Zhibin Deng,Ding Pei
出处
期刊:Cornell University - arXiv
日期:2024-12-16
标识
DOI:10.48550/arxiv.2412.11924
摘要
In the relentless pursuit of quantum computational advantage, we present a significant advancement with the development of Zuchongzhi 3.0. This superconducting quantum computer prototype, comprising 105 qubits, achieves high operational fidelities, with single-qubit gates, two-qubit gates, and readout fidelity at 99.90%, 99.62% and 99.18%, respectively. Our experiments with an 83-qubit, 32-cycle random circuit sampling on Zuchongzhi 3.0 highlight its superior performance, achieving one million samples in just a few hundred seconds. This task is estimated to be infeasible on the most powerful classical supercomputers, Frontier, which would require approximately $6.4\times 10^9$ years to replicate the task. This leap in processing power places the classical simulation cost six orders of magnitude beyond Google's SYC-67 and SYC-70 experiments [Nature 634, 328(2024)], firmly establishing a new benchmark in quantum computational advantage. Our work not only advances the frontiers of quantum computing but also lays the groundwork for a new era where quantum processors play an essential role in tackling sophisticated real-world challenges.
科研通智能强力驱动
Strongly Powered by AbleSci AI