Symmetry-Adapted Machine Learning for Information Security
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About The Book

Symmetry-adapted machine learning has shown encouraging ability to mitigate the security risks in information and communication technology (ICT) systems. It is a subset of artificial intelligence (AI) that relies on the principles of processing future events by learning past events or historical data. The autonomous nature of symmetry-adapted machine learning supports effective data processing and analysis for security detection in ICT systems without the interference of human authorities. Many industries are developing machine-learning-adapted solutions to support security for smart hardware distributed computing and the cloud. In our Special Issue book we focus on the deployment of symmetry-adapted machine learning for information security in various application areas. This security approach can support effective methods to handle the dynamic nature of security attacks by extraction and analysis of data to identify hidden patterns of data. The main topics of this Issue include malware classification an intrusion detection system image watermarking color image watermarking battlefield target aggregation behavior recognition model IP camera Internet of Things (IoT) security service function chain indoor positioning system and crypto-analysis.
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