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Advanced AI News
Home » Demystifying Common Beliefs in Graph Machine Learning
arXiv AI

Demystifying Common Beliefs in Graph Machine Learning

Advanced AI BotBy Advanced AI BotJune 17, 2025No Comments2 Mins Read
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[Submitted on 21 May 2025 (v1), last revised 14 Jun 2025 (this version, v2)]

View a PDF of the paper titled Oversmoothing, Oversquashing, Heterophily, Long-Range, and more: Demystifying Common Beliefs in Graph Machine Learning, by Adrian Arnaiz-Rodriguez and 1 other authors

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Abstract:After a renaissance phase in which researchers revisited the message-passing paradigm through the lens of deep learning, the graph machine learning community shifted its attention towards a deeper and practical understanding of message-passing’s benefits and limitations. In this position paper, we notice how the fast pace of progress around the topics of oversmoothing and oversquashing, the homophily-heterophily dichotomy, and long-range tasks, came with the consolidation of commonly accepted beliefs and assumptions that are not always true nor easy to distinguish from each other. We argue that this has led to ambiguities around the investigated problems, preventing researchers from focusing on and addressing precise research questions while causing a good amount of misunderstandings. Our contribution wants to make such common beliefs explicit and encourage critical thinking around these topics, supported by simple but noteworthy counterexamples. The hope is to clarify the distinction between the different issues and promote separate but intertwined research directions to address them.

Submission history

From: Federico Errica [view email]
[v1]
Wed, 21 May 2025 14:11:59 UTC (1,409 KB)
[v2]
Sat, 14 Jun 2025 07:29:48 UTC (1,396 KB)



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