Machine Learning Security Principles

Keep data, networks, users, and applications safe from prying eyes

(Author) John Paul Mueller
Format: Paperback
Price: £33.99
Generally dispatched in 1 to 2 days

Thwart hackers by preventing, detecting, and misdirecting access before they can plant malware, obtain credentials, engage in fraud, modify data, poison models, corrupt users, eavesdrop, and otherwise ruin your day Key Features: Discover how hackers rely on misdirection and deep fakes to fool even the best security systems Retain the usefulness of your data by detecting unwanted and invalid modifications Develop application code to meet the security requirements related to machine learning Book Description: Businesses are leveraging the power of AI to make undertakings that used to be complicated and pricy much easier, faster, and cheaper. The first part of this book will explore these processes in more depth, which will help you in understanding the role security plays in machine learning. As you progress to the second part, you'll learn more about the environments where ML is commonly used and dive into the security threats that plague them using code, graphics, and real-world references. The next part of the book will guide you through the process of detecting hacker behaviors in the modern computing environment, where fraud takes many forms in ML, from gaining sales through fake reviews to destroying an adversary's reputation. Once you've understood hacker goals and detection techniques, you'll learn about the ramifications of deep fakes, followed by mitigation strategies. This book also takes you through best practices for embracing ethical data sourcing, which reduces the security risk associated with data. You'll see how the simple act of removing personally identifiable information (PII) from a dataset lowers the risk of social engineering attacks. By the end of this machine learning book, you'll have an increased awareness of the various attacks and the techniques to secure your ML systems effectively. What You Will Learn: Explore methods to detect and prevent illegal access to your system Implement detection techniques when access does occur Employ machine learning techniques to determine motivations Mitigate hacker access once security is breached Perform statistical measurement and behavior analysis Repair damage to your data and applications Use ethical data collection methods to reduce security risks Who this book is for: Whether you're a data scientist, researcher, or manager working with machine learning techniques in any aspect, this security book is a must-have . While most resources available on this topic are written in a language more suitable for experts, this guide presents security in an easy-to-understand way, employing a host of diagrams to explain concepts to visual learners. While familiarity with machine learning concepts is assumed, knowledge of Python and programming in general will be useful.

Information
Publisher:
Packt Publishing Limited
Format:
Paperback
Number of pages:
None
Language:
en
ISBN:
9781804618851
Publish year:
2022
Publish date:
Dec. 30, 2022

John Paul Mueller

John Paul Mueller is a prolific author known for his technical books on programming and computer technology. His writing style is clear, concise, and accessible, making complex topics easy to understand for readers of all levels. Mueller's most notable works include "Python for Data Science For Dummies," "C++ All-in-One For Dummies," and "Machine Learning For Dummies." He has made significant contributions to the field of computer science and is highly regarded for his expertise in programming languages and data analysis. Mueller's work has had a lasting impact on the literary genre of technical books, and his books are widely used as essential resources for programmers and data scientists. His most famous work, "Python for Data Science For Dummies," has become a go-to guide for those looking to learn and master Python for data analysis and machine learning.

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