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Graph Neural Networks in Action
book

Graph Neural Networks in Action

by Namid Stillman, Keita Broadwater
February 2025
Intermediate to advanced
392 pages
12h 9m
English
Manning Publications
Content preview from Graph Neural Networks in Action

4 Graph attention networks

This chapter covers

  • Understanding attention and how it’s applied to graph attention networks
  • Knowing when to use GAT and GATv2 layers in PyTorch Geometric
  • Using mini-batching via the NeighborLoader class
  • Implementing and applying graph attention networks layers in a spam detection problem

In this chapter, we extend our discussion of convolutional graph neural network (convolutional GNN) architectures by looking at a special variant of such models, the graph attention network (GAT). While these GNNs use convolution as introduced in the previous chapter, they extend this idea with an attention mechanism to highlight important nodes in the learning process [1, 2]. In contrast to the conventional convolutional GNN, ...

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Publisher Resources

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