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Updated: May 25, 2025

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Setting Limits on Supersymmetry Using Simplified Models
Published on: November 15, 2013
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将QMM框架扩展到强和弱相互作用.
Florian Neukart1,2, Eike Marx2, Valerii Vinokur2
1Leiden Institute of Advanced Computer Science, Leiden University, Gorlaeus Gebouw-BE-Vleugel, Einsteinweg 55, 2333 Leiden, The Netherlands.
Entropy (Basel, Switzerland)
|February 26, 2025
概括
我们扩展了量子记忆矩阵框架,将量子力学和广义相对论统一,并纳入了所有标准模型力量. 这种方法将时空视为一种记忆,即使在黑洞中也保留了量子信息.
科学领域:
- 理论物理 理论物理
- 量子引力就是量子引力.
- 高能物理 高能物理
背景情况:
- 调和量子力学和广义相对论仍然是一个重大挑战.
- 标准模型描述了基本粒子和力,但缺乏量子引力框架.
- 量子记忆矩阵 (QMM) 框架为量子引力提供了一种新的方法.
研究的目的:
- 扩展QMM框架,包括所有标准模型尺寸交互.
- 开发量子引力和粒子物理学的统一理论.
- 为了研究离散的,基于记忆的时空的含义.
主要方法:
- 将时空分离成具有局部希尔伯特空间 (量子印记) 的普朗克尺度细胞.
- 为夸克,子和电弱玻色子构建尺度不变的印记运算符.
- 在QMM中嵌入SU(3) c (QCD) 和SU(2) L × U(1) Y (电弱) 相互作用.
主要成果:
- 一个统一的框架自然地强制执行统一性,通过存储量子信息在高曲率区域,如黑洞地平线.
- 普朗克尺度切线可以解决紫外线分歧,并修改运行合器.
- 在黑洞蒸发过程中,非热相关性的保存得到了促进.
结论:
- 扩展的QMM提供了对量子引力和标准模型的离散,基于内存的视图.
- 挑战包括制定非阿贝尔印记运算符和与循环量子引力集成.
- 观测探测器可能来自罕见的衰变和原始黑洞蒸发光谱.
关键词:
普朗克尺度上的离散化.紫外线的切断限制黑洞的蒸发是黑洞的蒸发.颜色的限制限制限制.宇宙学是一门宇宙学.电弱统一的一体化测量器不变性 测量器不变性高能量现象学的现象学非阿贝尔标尺场的非阿贝尔标尺场量子重力就是量子重力.量子记忆矩阵 (QMM) 是一个量子记忆矩阵.强烈的互动 强烈的互动统一性 统一性 统一性弱相互作用 弱相互作用更多相关视频
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