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Home > Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence, 36 > No. 8: AAAI-22 Technical Tracks 8

Generalized Equivariance and Preferential Labeling for GNN Node Classification

February 1, 2023

Authors

Zeyu Sun

Peking University


Wenjie Zhang

Peking University


Lili Mou

University of Alberta


Qihao Zhu

Peking University


Yingfei Xiong

Peking University


Lu Zhang

Peking University


Proceedings:

No. 8: AAAI-22 Technical Tracks 8

Volume

Issue:

Proceedings of the AAAI Conference on Artificial Intelligence, 36

Track:

AAAI Technical Track on Machine Learning III

Downloads:

Download PDF

Abstract:

Existing graph neural networks (GNNs) largely rely on node embeddings, which represent a node as a vector by its identity, type, or content. However, graphs with unattributed nodes widely exist in real-world applications (e.g., anonymized social networks). Previous GNNs either assign random labels to nodes (which introduces artefacts to the GNN) or assign one embedding to all nodes (which fails to explicitly distinguish one node from another). Further, when these GNNs are applied to unattributed node classification problems, they have an undesired equivariance property, which are fundamentally unable to address the data with multiple possible outputs. In this paper, we analyze the limitation of existing approaches to node classification problems. Inspired by our analysis, we propose a generalized equivariance property and a Preferential Labeling technique that satisfies the desired property asymptotically. Experimental results show that we achieve high performance in several unattributed node classification tasks.

DOI:

10.1609/aaai.v36i8.20815


AAAI

Proceedings of the AAAI Conference on Artificial Intelligence, 36



Topics: AAAI

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