2021
IJCAI
IJCAI 2021
The Power of the Weisfeiler-Leman Algorithm for Machine Learning with Graphs
Abstract
In recent years, algorithms and neural architectures based on the Weisfeiler-Leman algorithm, a well-known heuristic for the graph isomorphism problem, emerged as a powerful tool for (supervised) machine learning with graphs and relational data. Here, we give a comprehensive overview of the algorithm's use in a machine learning setting. We discuss the theoretical background, show how to use it for supervised graph- and node classification, discuss recent extensions, and its connection to neural architectures. Moreover, we give an overview of current applications and future directions to stimulate research.
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Interdisciplinary Bridge
— Artificial Intelligence and Deep Learning and Machine Learning and Mathematics & Optimization
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Keyword Pioneer
— weisfeiler-lemann algorithm
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Cross-Pollinator
— Artificial Intelligence, Computer Science, Computer Vision, Data Science & Analytics, Deep Learning, Healthcare & Medicine, Interdisciplinary, Knowledge & Reasoning, Machine Learning, Mathematics & Optimization, Natural Language Processing, Reinforcement Learning, Robotics, Security & Privacy, Speech & Audio
Authors
Topics
Machine Learning > Core Methods > Representation Learning
Machine Learning > Application Areas > Domain Adaptation
Deep Learning > Architectures > Graph Neural Networks
Mathematics & Optimization > Mathematics > Graph Theory
Machine Learning > Core Methods > Graph Neural Networks
Artificial Intelligence > Core AI > Knowledge Graph