arXiv:2507.10608cs.SIcs.LG2025-07

破解洗钱行为的隐蔽规律,用网络模式识别替代异常检测

The Shape of Deceit: Behavioral Consistency and Fragility in Money Laundering Patterns

  • 以行为一致性为核心,通过子图结构捕捉洗钱模式的语义特征
  • 发现洗钱模式在拓扑变化下仍具语义鲁棒性,但对属性微调敏感
  • 适合反洗钱系统设计者、金融风控工程师阅读参考

传统反洗钱(AML)系统主要依赖统计偏差或可疑行为识别异常主体或交易,触发人工调查。然而,这种范式误解了洗钱的本质——它通常不是异常行为,而是有目的、重复且隐藏于一致行为模式中的活动。本文挑战以主体为中心的方法,提出一种基于网络理论的视角,强调在有向交易网络中检测预定义的洗钱模式。我们引入行为一致性作为洗钱活动的核心特征,认为这些模式更应通过表达语义与功能角色的子图结构来刻画,而非仅依赖几何形态。关键地,我们探讨了模式脆弱性:洗钱模式对小属性变化的敏感性,以及在剧烈拓扑变化下的语义鲁棒性。我们主张,洗钱检测不应依赖统计离群点,而应关注行为本质的保持,并提出一种基于此洞察的模式相似性重构方法。这一哲学与实践的转变,对AML系统如何建模、扫描和解释网络以对抗金融犯罪具有深远影响。

原文摘要 · Abstract (English)

Conventional anti-money laundering (AML) systems predominantly focus on identifying anomalous entities or transactions, flagging them for manual investigation based on statistical deviation or suspicious behavior. This paradigm, however, misconstrues the true nature of money laundering, which is rarely anomalous but often deliberate, repeated, and concealed within consistent behavioral routines. In this paper, we challenge the entity-centric approach and propose a network-theoretic perspective that emphasizes detecting predefined laundering patterns across directed transaction networks. We introduce the notion of behavioral consistency as the core trait of laundering activity, and argue that such patterns are better captured through subgraph structures expressing semantic and functional roles - not solely geometry. Crucially, we explore the concept of pattern fragility: the sensitivity of laundering patterns to small attribute changes and, conversely, their semantic robustness even under drastic topological transformations. We claim that laundering detection should not hinge on statistical outliers, but on preservation of behavioral essence, and propose a reconceptualization of pattern similarity grounded in this insight. This philosophical and practical shift has implications for how AML systems model, scan, and interpret networks in the fight against financial crime.

反洗钱网络分析行为模式

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