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10 Machine Learning Blueprints You Should Know for Cybersecurity

You're reading from  10 Machine Learning Blueprints You Should Know for Cybersecurity

Product type Book
Published in May 2023
Publisher Packt
ISBN-13 9781804619476
Pages 330 pages
Edition 1st Edition
Languages
Author (1):
Rajvardhan Oak Rajvardhan Oak
Profile icon Rajvardhan Oak

Table of Contents (15) Chapters

Preface Chapter 1: On Cybersecurity and Machine Learning Chapter 2: Detecting Suspicious Activity Chapter 3: Malware Detection Using Transformers and BERT Chapter 4: Detecting Fake Reviews Chapter 5: Detecting Deepfakes Chapter 6: Detecting Machine-Generated Text Chapter 7: Attributing Authorship and How to Evade It Chapter 8: Detecting Fake News with Graph Neural Networks Chapter 9: Attacking Models with Adversarial Machine Learning Chapter 10: Protecting User Privacy with Differential Privacy Chapter 11: Protecting User Privacy with Federated Machine Learning Chapter 12: Breaking into the Sec-ML Industry Index Other Books You May Enjoy

An introduction to federated machine learning

Let us first look at what federated learning is and why it is a valuable tool. We will first look at privacy challenges that are faced while applying machine learning, followed by how and why we apply federated learning.

Privacy challenges in machine learning

Traditional ML involves a series of steps that we have discussed multiple times so far: data preprocessing, feature extraction, model training, and tuning the model for best performance. However, this involves the data being exposed to the model and, therefore, is based on the premise of the availability of data. The more data we have available, the more accurate the model will be.

However, there is often a scarcity of data in the real world. Labels are hard to come by, and there is no centrally aggregated data source. Rather, data is collected and processed by multiple entities who may not want to share it.

This is true more often than not in the security space. Because...

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