Increasingly, crimes and fraud are digital in nature, occurring
at breakneck speed and encompassing large volumes of data. To
combat this unlawful activity, knowledge about the use of machine
learning technology and software is critical. Machine Learning
Forensics for Law Enforcement, Security, and Intelligence
integrates an assortment of deductive and instructive tools,
techniques, and technologies to arm professionals with the tools
they need to be prepared and stay ahead of the game.
Step-by-step instructions
The book is a practical guide on how to conduct forensic
investigations using self-organizing clustering map (SOM) neural
networks, text extraction, and rule generating software to
"interrogate the evidence." This powerful data is indispensable for
fraud detection, cybersecurity, competitive counterintelligence,
and corporate and litigation investigations. The book also provides
step-by-step instructions on how to construct adaptive criminal and
fraud detection systems for organizations.
Prediction is the key
Internet activity, email, and wireless communications can be
captured, modeled, and deployed in order to anticipate potential
cyber attacks and other types of crimes. The successful prediction
of human reactions and server actions by quantifying their
behaviors is invaluable for pre-empting criminal activity. This
volume assists chief information officers, law enforcement
personnel, legal and IT professionals, investigators, and
competitive intelligence analysts in the strategic planning needed
to recognize the patterns of criminal activities in order to
predict when and where crimes and intrusions are likely to take
place.
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