Fraud Detection with Graph Features and Graph Neural Networks

Опубликовано: 11 Июль 2026
на канале: SF Big Analytics
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Why do we need Graph Features and Graph Neural Networks for Fraud Detection? See some reasons below:
Class Imbalance, Label Scarcity & Fidelity (Fraud cases are rare events)
Fraud Camouflage - handle context & feature inconsistency (i.e. fraudsters connecting to regular entities)
Investigation and Exploration (visual way to connect the dots)
Anomaly Detection - handle point, structural and contextual outliers
Graph Embeddings - combined with NLP, could be used for scalable fuzzy search and entity resolution
Explainability & fairness - adding the context and structure for interpretation, rebalancing the data to remove bias.
That is why Facebook, Amazon, Tencent, Alibaba and eBay are using Graph for Fraud Detection.

Speaker: Nikita Iserson
Website: https://www.aicamp.ai/event/eventdeta...