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通过Parrondo策略在杂的中等规模量子硬件上控制量子混乱
Aditi Rath1, Dinesh Kumar Panda1, Colin Benjamin1
1Homi Bhabha National Institute, National Institute of Science Education and Research, School of Physical Sciences, Bhubaneswar, Jatni 752050, India and , Training School Complex, Anushaktinagar, Mumbai 400094, India.
Physical review. E
|December 23, 2025
概括
研究人员在杂的中间尺度量子 (NISQ) 设备上使用离散时间量子步行 (DTQW) 探索了量子混乱. 他们成功地控制了量子混沌过渡,为新的量子算法和加密协议铺平了道路.
科学领域:
- 量子计算是一种量子计算.
- 这是量子混沌.
- 量子信息科学 量子信息科学
背景情况:
- 杂的中级量子计算机 (NISQ) 正在进步,接近经典超级计算机的特定任务能力.
- 量子混沌是一个复杂的现象,为量子计算带来挑战和机遇.
研究的目的:
- 在NISQ系统中探索和控制量子混乱.
- 在循环图上实现离散时间量子步行 (DTQW),以控制混乱.
- 用帕伦多悖论策略研究从量子混乱到秩序的过渡.
主要方法:
- 在3和4周期图表上利用离散时间量子步行 (DTQW).
- 采用量子里埃转换来优化NISQ硬件上的量子步行实现.
- 应用了帕伦多悖论的策略,以实验控制量子混沌动态.
- 在3周期图表上使用动态解脉冲研究了保真度的改进.
主要成果:
- 在奇数 (3周期) 和偶数 (4周期) 图表上成功演示了从量子混乱到秩序的过渡.
- 在4周期图表上实现了高保真度量子进化.
- 对具有动态解的3周期图表观察到显著的忠实度改善.
- 在三个不同的NISQ设备中验证了方法.
结论:
- 在真实量子硬件上开发了一种用于探测和控制量子混沌动态的实用方法.
- 为未来的量子算法和加密协议奠定了基础,利用量子步行.
- 突出了NISQ设备研究复杂量子现象的潜力.
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