A Practical Guide to Graph Neural Networks (original) (raw)

A Practical Tutorial on Graph Neural Networks

Jack Joyner

ACM Computing Surveys, 2022

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A Comprehensive Survey on Graph Neural Networks

Philip Yu

IEEE Transactions on Neural Networks and Learning Systems, 2020

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Introduction to Graph Neural Networks

Alina Lazar

Synthesis Lectures on Artificial Intelligence and Machine Learning, 2020

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Graph Neural Networks: Architectures, Stability, and Transferability

FERNANDO GAMA

Proceedings of the IEEE, 2021

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TF-GNN: Graph Neural Networks in TensorFlow

Jonathan Halcrow

arXiv (Cornell University), 2022

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Convolutional Graph Neural Networks

FERNANDO GAMA

2019 53rd Asilomar Conference on Signals, Systems, and Computers, 2019

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Graph Neural Networks Are More Powerful Than we Think

Charilaos Kanatsoulis

arXiv (Cornell University), 2022

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Measuring and Improving the Use of Graph Information in Graph Neural Networks

Hongzhi Chen

2020

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Learning with Graph Neural Networks

IJMRAP Editor

IJMRAP, 2022

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Evaluating Deep Graph Neural Networks

Zeang Sheng

ArXiv, 2021

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What Do Graph Convolutional Neural Networks Learn?

Divij Sanjanwala

2022

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Gated Graph Convolutional Recurrent Neural Networks

FERNANDO GAMA

2019 27th European Signal Processing Conference (EUSIPCO), 2019

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Graph Neural Networks in IoT: A Survey

Guimin Dong

2022

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Some New Layer Architectures for Graph CNN

Shrey Gadiya

ArXiv, 2018

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Graphs, Convolutions, and Neural Networks: From Graph Filters to Graph Neural Networks

FERNANDO GAMA

IEEE Signal Processing Magazine, 2020

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On Node Features for Graph Neural Networks

dat hoang

Cornell University - arXiv, 2019

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Gated Graph Recurrent Neural Networks

FERNANDO GAMA

IEEE Transactions on Signal Processing, 2020

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The Graph Neural Network Model

Marco Gori

IEEE Transactions on Neural Networks, 2009

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The graph neural networking challenge

Peter Dorfinger

ACM SIGCOMM Computer Communication Review, 2021

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Self-Supervised Learning of Graph Neural Networks: A Unified Review

Jingtun Zhang

IEEE Transactions on Pattern Analysis and Machine Intelligence

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Bridging the Gap Between Spectral and Spatial Domains in Graph Neural Networks

Muhammet Balcilar

ArXiv, 2020

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Bridging the Gap between Spatial and Spectral Domains: A Unified Framework for Graph Neural Networks

Kaiqun Fu

ACM Computing Surveys

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Computing Graph Neural Networks: A Survey from Algorithms to Accelerators

akshay kumar Jain

ACM Computing Surveys

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DIG: A Turnkey Library for Diving into Graph Deep Learning Research

Youzhi Luo

ArXiv, 2021

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Graph neural architecture search: A survey

Moctard Oloulade

Tsinghua Science and Technology, 2022

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Training Matters: Unlocking Potentials of Deeper Graph Convolutional Neural Networks

Sitao Luan

ArXiv, 2020

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Survey of Image Based Graph Neural Networks

Usman Nazir

ArXiv, 2021

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Learning Graph Neural Networks with Approximate Gradient Descent

Qunwei Li

2021

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Computational Capabilities of Graph Neural Networks

Marco Gori

IEEE Transactions on Neural Networks, 2009

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Generalizing Graph Convolutional Neural Networks with Edge-Variant Recursions on Graphs

FERNANDO GAMA

2019 27th European Signal Processing Conference (EUSIPCO), 2019

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A Comparison between Recursive Neural Networks and Graph Neural Networks

V Di Massa

The 2006 IEEE International Joint Conference on Neural Network Proceedings, 2006

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On Positional and Structural Node Features for Graph Neural Networks on Non-attributed Graphs

Hejie Cui

ArXiv, 2021

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Using Graph Convolutional Neural Networks for NLP tasks

Sanchit Sinha

2020

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Graph Neural Networks with Convolutional ARMA Filters

Filippo Maria Bianchi

Graph Neural Networks with Convolutional ARMA Filters, 2019

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Learning How to Propagate Messages in Graph Neural Networks

Suhang Wang

Proceedings of the 27th ACM SIGKDD Conference on Knowledge Discovery & Data Mining, 2021

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