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Mar, 2024
使用注意力驱动的脉冲神经网络增强图表示学习
Enhancing Graph Representation Learning with Attention-Driven Spiking Neural Networks
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Huifeng Yin, Mingkun Xu, Jing Pei, Lei Deng
TL;DR
本文提出了一个将注意机制与脉冲神经网络(SNN)相结合的新方法,以改进图表示学习的能力。该方法能够在学习过程中选择性地关注图中重要的节点和相应的特征,并在多个基准数据集上进行评估,结果显示其性能与现有的图学习技术相当。
Abstract
graph representation learning
has become a crucial task in machine learning and data mining due to its potential for modeling complex structures such as social networks, chemical compounds, and biological systems.
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