来自 | arXiv 作者 | David Bacciu等
编译 | 机器之心
意大利比萨大学的研究者发表论文,介绍了图深度学习领域的主要概念、思想和应用。与其他论文不同的是,这篇论文更像一份入门教程,既适合初学者作为学习材料,也可以帮助资深从业者理清该领域的脉络,避免重复造轮子。
图 2:所有图学习方法共享的机制。向深度图网络(DGN)输入图,它将输出节点表示 h_v, ∀_v ∈ V_g。将此类表示聚合起来,即可得到图表示 h_g。
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邻域聚合
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池化
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执行节点聚合,以形成图嵌入
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核
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谱方法
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随机游走
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图对抗训练和攻击
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图序列生成模型
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时间演化图(Time-evolving graph)
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偏差-方差权衡
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合理利用边信息
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超图学习(Hypergraph learning)
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化学和药物设计
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社交网络
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自然语言处理
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安防
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时空预测
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推荐系统
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本篇文章来源于: 深度学习这件小事
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