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Innovations in Cybersecurity: Machine Learning and Graphs
This chapter explores the use of frequency counting features and machine learning models in cybersecurity, emphasizing the balance between manual feature design and automation. It delves into the challenges and advancements of graph neural networks for fraud detection, highlighting the complexities of labeling malicious entities within large datasets. The discussion also covers the development of new models and libraries aimed at improving effectiveness in detecting malicious domains and enhancing explainability in machine learning.