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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 1. Chapter 1: On Cybersecurity and Machine Learning 2. Chapter 2: Detecting Suspicious Activity 3. Chapter 3: Malware Detection Using Transformers and BERT 4. Chapter 4: Detecting Fake Reviews 5. Chapter 5: Detecting Deepfakes 6. Chapter 6: Detecting Machine-Generated Text 7. Chapter 7: Attributing Authorship and How to Evade It 8. Chapter 8: Detecting Fake News with Graph Neural Networks 9. Chapter 9: Attacking Models with Adversarial Machine Learning 10. Chapter 10: Protecting User Privacy with Differential Privacy 11. Chapter 11: Protecting User Privacy with Federated Machine Learning 12. Chapter 12: Breaking into the Sec-ML Industry 13. Index 14. Other Books You May Enjoy

Transformers and attention

Transformers are an architecture taking the machine learning world by storm, especially in the fields of natural language processing. An improvement over classical recurrent neural networks (RNN) for sequence modeling, transformers work on the principle of attention. In this section, we will discuss the attention mechanism, transformers, and the BERT architecture.

Understanding attention

We will now take a look at attention, a recent deep learning paradigm that has made great advances in the world of natural language processing.

Sequence-to-sequence models

Most natural language tasks rely heavily on sequence-to-sequence models. While traditional methods are used for classifying a particular data point, sequence-to-sequence architectures map sequences in one domain to sequences in another. An excellent example of this is language translation. An automatic machine translator will take in sequences of tokens (sentences and words) from the source...

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