数字化微量体稳定状态:量子位注册表中的透,信息图和多方相关性
István Németh1, Szilárd Zsóka1, Attila Bencze1
1Kandó Kálmán Faculty of Electrical Engineering, Óbuda University, 1034 Budapest, Hungary.
Entropy (Basel, Switzerland)
|February 27, 2026
概括
我们介绍了一个数字化工作流来使用量子位寄存器分析量子场相关性. 这种方法揭示了微粒体中的捕获分散体如何影响信息图和量子比特相关性.
科学领域:
- 量子信息科学 量子信息科学
- 量子光学是一种量子光学.
- 凝聚物质物理学 凝聚物质物理学
背景情况:
- 描述量子场需要分析它们复杂的相关结构.
- 将量子场数字化到量子位寄存器上,为分析提供了一种新的方法.
- 微光散射器提供了一个研究驱动散射量子系统的平台.
研究的目的:
- 开发和演示基于数字化的工作流程,用于分析量子场和相关性.
- 为了研究微激光捕获组件对信息图结构的影响.
- 探索不同参数模式的量子比特之间的能量和信息分布.
主要方法:
- 将截断的玻色子量子场 (32个福克级) 嵌入到一个五量子位的寄存器中.
- 使用灰色代码映射和二进制编码来表示光子数.
- 计算减少了,相互信息,消极性和三重.
- 根据计算的相关性模式定义和分析信息图.
主要成果:
- 数字化信息图表清楚地反映了微型捕捉机组的结构.
- 多块陷导致稀疏的,带带的信息图形,其中占主导地位的两个量子比特链接.
- 单个分组的捕获或热合导致更多的非局部化相关性.
- 和相互信息配置文件提供了对能源和信息分布的见解.
结论:
- 数字化工作流提供了一个实用的诊断,用于探测数字化玻色子场的相关结构.
- 信息图可以作为数字化场态的结构探测器,揭示潜在的物理.
- 该工作流可转移到编码在小型量子位寄存器中的其他玻色子场.
- 这种方法有助于理解量子系统中的驱动散流相关性结构.
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