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4 months ago

Semi-supervised Credit Card Fraud Detection via Attribute-Driven Graph Representation

Sheng Xiang; Mingzhi Zhu; Dawei Cheng; Enxia Li; Ruihui Zhao; Yi Ouyang; Ling Chen; Yefeng Zheng

Semi-supervised Credit Card Fraud Detection via Attribute-Driven Graph Representation

Abstract

Credit card fraud incurs a considerable cost for both cardholders and issuing banks. Contemporary methods apply machine learning-based classifiers to detect fraudulent behavior from labeled transaction records. But labeled data are usually a small proportion of billions of real transactions due to expensive labeling costs, which implies that they do not well exploit many natural features from unlabeled data. Therefore, we propose a semi-supervised graph neural network for fraud detection. Specifically, we leverage transaction records to construct a temporal transaction graph, which is composed of temporal transactions (nodes) and interactions (edges) among them. Then we pass messages among the nodes through a Gated Temporal Attention Network (GTAN) to learn the transaction representation. We further model the fraud patterns through risk propagation among transactions. The extensive experiments are conducted on a real-world transaction dataset and two publicly available fraud detection datasets. The result shows that our proposed method, namely GTAN, outperforms other state-of-the-art baselines on three fraud detection datasets. Semi-supervised experiments demonstrate the excellent fraud detection performance of our model with only a tiny proportion of labeled data.

Code Repositories

finint/antifraud
Official
pytorch
ai4risk/antifraud
Official
pytorch

Benchmarks

BenchmarkMethodologyMetrics
fraud-detection-on-amazon-fraudGTAN
AUC-ROC: 97.50
Averaged Precision: 89.26
fraud-detection-on-yelp-fraudGTAN
AUC-ROC: 94.98
Averaged Precision: 82.41
node-classification-on-amazon-fraudGTAN
AUC-ROC: 97.50
node-classification-on-yelpchiGTAN
AUC-ROC: 94.98

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Semi-supervised Credit Card Fraud Detection via Attribute-Driven Graph Representation | Papers | HyperAI