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商品詳細
Neural Network-Based Deep Learning for Online Payment Fraud Detection.
・ISBN 978-981-9585-12-0 hard EUR 119.99
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| 著者・編者 | Xie, Yu / Tian, Yue / Yao, Jiamin / Liu, Guanjun, |
|---|---|
| 出版社 | (Springer, GW) |
| 出版年月 | 2026.05 |
| ページ数 | 185 pp. |
| 言語 | ENG |
| ニュース番号 | <772-262> |
解説
This book explores deep learning as a next-generation approach to online payment fraud detection in the face of increasingly complex and adaptive threats. Traditional rule-based or shallow learning methods are no longer sufficient. Through ten focused chapters, this book tackles challenges such as behavioral modeling, spatiotemporal anomaly detection, class imbalance, behavior drift, and graph-based inference. It applies advanced neural architectures including LSTM, GRU, GANs, GNNs, and spatiotemporal transformers. With a problem-driven structure, each chapter links real-world fraud problems to tailored neural solutions, validated on large-scale transaction data. This book blends theory, practical design, and empirical rigor, offering researchers and practitioners a foundation for scalable, adaptive, and reliable fraud detection systems.