An autoML framework & toolkit for machine learning on graphs.
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Updated
Aug 8, 2024 - Python
An autoML framework & toolkit for machine learning on graphs.
Protein Graph Library
Geometric GNN Dojo provides unified implementations and experiments to explore the design space of Geometric Graph Neural Networks.
Implementation of Principal Neighbourhood Aggregation for Graph Neural Networks in PyTorch, DGL and PyTorch Geometric
Free hands-on course about Graph Neural Networks using PyTorch Geometric.
The official implementation for ICLR23 spotlight paper "DIFFormer: Scalable (Graph) Transformers Induced by Energy Constrained Diffusion"
The official implementation of NeurIPS22 spotlight paper "NodeFormer: A Scalable Graph Structure Learning Transformer for Node Classification"
Attention over nodes in Graph Neural Networks using PyTorch (NeurIPS 2019)
A PyTorch implementation of "Signed Graph Convolutional Network" (ICDM 2018).
Implementation of MolCLR: "Molecular Contrastive Learning of Representations via Graph Neural Networks" in PyG.
[CVPR'22 Best Paper Finalist] Official PyTorch implementation of the method presented in "Learning Multi-View Aggregation In the Wild for Large-Scale 3D Semantic Segmentation"
GOOD: A Graph Out-of-Distribution Benchmark [NeurIPS 2022 Datasets and Benchmarks]
gRNAde: Geometric Deep Learning for 3D RNA inverse design
Implementation of "GNNAutoScale: Scalable and Expressive Graph Neural Networks via Historical Embeddings" in PyTorch
Making self-supervised learning work on molecules by using their 3D geometry to pre-train GNNs. Implemented in DGL and Pytorch Geometric.
PyTorch Geometric Signed Directed is a signed/directed graph neural network extension library for PyTorch Geometric. The paper is accepted by LoG 2023.
Topological Graph Neural Networks (ICLR 2022)
B站GNN教程资料
Code for SIGGRAPH paper CNNs on Surfaces using Rotation-Equivariant Features
A graph reliability toolbox based on PyTorch and PyTorch Geometric (PyG).
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