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Sep, 2023
图对比学习遇见图元学习:一种针对少样本节点任务的统一方法
Graph Contrastive Learning Meets Graph Meta Learning: A Unified Method for Few-shot Node Tasks
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Hao Liu, Jiarui Feng, Lecheng Kong, Dacheng Tao, Yixin Chen...
TL;DR
我们通过广泛的实验验证了对比学习和元学习相结合的新模式COLA在少样本节点分类任务中的重要性,并证明COLA在所有任务上都取得了新的最先进水平。
Abstract
graph neural networks
(GNNs) have become popular in Graph Representation Learning (GRL). One fundamental application is
few-shot node classification
. Most existing methods follow the
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