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DEEP LEARNING APPLICATIONS FOR CYBER SECURITY
Título:
DEEP LEARNING APPLICATIONS FOR CYBER SECURITY
Subtítulo:
Autor:
ALAZAB, M
Editorial:
SPRINGER VERLAG
Año de edición:
2019
Materia
SEGURIDAD Y CRIPTOGRAFIA
ISBN:
978-3-030-13056-5
Páginas:
246
133,00 €

 

Sinopsis

Bridges two popular areas (Deep Learning and Cyber Security) with self-contained material
Fully self-contained with ample practical examples
Provides wide coverage of popular Deep Learning tools and frameworks enabling the readers to quickly develop workable and advanced prototypes
Combines academic excellence with extensive practical lessons



Cybercrime remains a growing challenge in terms of security and privacy practices. Working together, deep learning and cyber security experts have recently made significant advances in the fields of intrusion detection, malicious code analysis and forensic identification. This book addresses questions of how deep learning methods can be used to advance cyber security objectives, including detection, modeling, monitoring and analysis of as well as defense against various threats to sensitive data and security systems. Filling an important gap between deep learning and cyber security communities, it discusses topics covering a wide range of modern and practical deep learning techniques, frameworks and development tools to enable readers to engage with the cutting-edge research across various aspects of cyber security. The book focuses on mature and proven techniques, and provides ample examples to help readers grasp the key points.