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You're reading from  Hands-On Graph Neural Networks Using Python

Product typeBook
Published inApr 2023
PublisherPackt
ISBN-139781804617526
Edition1st Edition
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Author (1)
Maxime Labonne
Maxime Labonne
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Maxime Labonne

Maxime Labonne is currently a senior applied researcher at Airbus. He received a M.Sc. degree in computer science from INSA CVL, and a Ph.D. in machine learning and cyber security from the Polytechnic Institute of Paris. During his career, he worked on computer networks and the problem of representation learning, which led him to explore graph neural networks. He applied this knowledge to various industrial projects, including intrusion detection, satellite communications, quantum networks, and AI-powered aircrafts. He is now an active graph neural network evangelist through Twitter and his personal blog.
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Part 2: Fundamentals

In this second part of the book, we will delve into the process of constructing node representations using graph learning. We will start by exploring traditional graph learning techniques, drawing on the advancements made in natural language processing. Our aim is to understand how these techniques can be applied to graphs and how they can be used to build node representations.

We will then move on to incorporating node features into our models and explore how they can be used to build even more accurate representations. Finally, we will introduce two of the most fundamental GNN architectures, the Graph Convolutional Network (GCN) and the Graph Attention Network (GAT). These two architectures are the building blocks of many state-of-the-art graph learning methods and will provide a solid foundation for the next part.

By the end of this part, you will have a deeper understanding of how traditional graph learning techniques, such as random walks, can be used...

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Published in: Apr 2023Publisher: PacktISBN-13: 9781804617526
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Author (1)

author image
Maxime Labonne

Maxime Labonne is currently a senior applied researcher at Airbus. He received a M.Sc. degree in computer science from INSA CVL, and a Ph.D. in machine learning and cyber security from the Polytechnic Institute of Paris. During his career, he worked on computer networks and the problem of representation learning, which led him to explore graph neural networks. He applied this knowledge to various industrial projects, including intrusion detection, satellite communications, quantum networks, and AI-powered aircrafts. He is now an active graph neural network evangelist through Twitter and his personal blog.
Read more about Maxime Labonne