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复杂系统中的起源和因果关系:因果起源的调查和相关的定量研究
Bing Yuan1, Jiang Zhang1,2, Aobo Lyu3
1Swarma Research, Beijing 100085, China.
Entropy (Basel, Switzerland)
|February 23, 2024
概括
本综述探讨了因果产生 (CE),即在复杂系统中出现新的因果定律. 它强调了量化CE和使用机器学习识别CE的方法,强调有效信息 (EI).
科学领域:
- 复杂系统科学 复杂系统科学
- 理论物理 理论物理
- 信息理论 信息理论
背景情况:
- 出现描述的是宏观性质,不能归结为单个组件.
- 因果关系可以表现出新出现的属性,在更高的抽象层面上出现新的因果定律.
- 因果出现 (CE) 理论统一了这些概念,使用因果措施来量化出现.
研究的目的:
- 提供对因果出现 (CE) 的定量理论和应用的全面审查.
- 解决量化CE和从数据中识别CE的关键挑战.
- 探索CE与机器学习和人工智能的交叉点.
主要方法:
- 关于定量CE理论近期进展的回顾.
- 专注于量化因果出现的方法.
- 整合机器学习和神经网络,从数据中识别CE.
主要成果:
- 有效信息 (EI) 被强调为量化因果出现的关键措施.
- 确定了两个问题类别:具有机器学习的CE和用于机器学习的CE.
- 机器学习技术对于在复杂系统中识别CE至关重要.
结论:
- 通过将出现和因果关系联系起来,CE理论为理解复杂系统提供了一个框架.
- 量化和识别CE,特别是使用机器学习,是重要的研究前沿.
- 未来的研究方向包括探索CE的各种应用及其与AI的集成.
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