Research on Fraud Detection Method Based on Heterogeneous Graph Representation Learning
Author:
Affiliation:
1. Data Intelligence System Research Center, Institute of Computing Technology, Chinese Academy of Sciences, Beijing 100086, China
2. Faculty of Information Technology, Beijing University of Technology, Beijing 100124, China
Abstract
Funder
National Natural Science Foundation of China
Publisher
MDPI AG
Subject
Electrical and Electronic Engineering,Computer Networks and Communications,Hardware and Architecture,Signal Processing,Control and Systems Engineering
Link
https://www.mdpi.com/2079-9292/12/14/3070/pdf
Reference33 articles.
1. Dong, Y., Chawla, N.V., and Swami, A. (2017, January 13–17). metapath2vec: Scalable representation learning for heterogeneous networks. Proceedings of the 23rd ACM SIGKDD International Conference on Knowledge Discovery and Data Mining, Halifax, NS, Canada.
2. Fu, T.-Y., Lee, W.-C., and Lei, Z. (2017, January 6–10). Hin2vec: Explore meta-paths in heterogeneous information networks for representation learning. Proceedings of the 2017 ACM on Conference on Information and Knowledge Management, Singapore.
3. Zhao, T., Deng, C., Yu, K., Jiang, T., Wang, D., and Jiang, M. (2020, January 29–23). Error-bounded graph anomaly loss for gnns. Proceedings of the 29th ACM International Conference on Information & Knowledge Management, Virtual.
4. Wang, L., Li, P., Xiong, K., Zhao, J., and Lin, R. (2021, January 1–5). Modeling heterogeneous graph network on fraud detection: A community-based framework with attention mechanism. Proceedings of the 30th ACM International Conference on Information & Knowledge Management, Virtual.
5. Discovering the global landscape of fraud detection studies: A bibliometric review;Mansour;J. Financ. Crime,2022
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