Network of Tensor Time Series
Baoyu Jing, Hanghang Tong, Yada Zhu
摘要
Co-evolving time series appears in a multitude of applications such as environmental monitoring, financial analysis, and smart transportation. This paper aims to address the following challenges, including (C1) how to incorporate explicit relationship networks of the time series; (C2) how to model the implicit relationship of the temporal dynamics. We propose a novel model called Network of Tensor Time Series (NeT 3 ), which is comprised of two modules, including Tensor Graph Convolutional Network (TGCN) and Tensor Recurrent Neural Network (TRNN). TGCN tackles the first challenge by generalizing Graph Convolutional Network (GCN) for flat graphs to tensor graphs, which captures the synergy between multiple graphs associated with the tensors. TRNN leverages tensor decomposition to model the implicit relationships among co-evolving time series. The experimental results on five real-world datasets demonstrate the efficacy of the proposed method.
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引用它的顶会 Paper19
- HDMI: High-order Deep Multiplex InfomaxBaoyu Jing, Chanyoung Park, Hanghang TongWWW 2021 · 被引用 199 次
- Graph Communal Contrastive LearningBolian Li, Baoyu Jing, Hanghang TongWWW 2022 · 被引用 77 次
- RawlsGCN: Towards Rawlsian Difference Principle on Graph Convolutional NetworkJian Kang, Yan Zhu, Yinglong Xia, Jiebo Luo 等WWW 2022 · 被引用 57 次
- VCR-Graphormer: A Mini-batch Graph Transformer via Virtual ConnectionsDongqi Fu, Zhigang Hua, Yan Xie, Jin Fang 等ICLR 2024 · 被引用 47 次
- From Trainable Negative Depth to Edge Heterophily in GraphsYuchen Yan, Yuzhong Chen, Huiyuan Chen, Minghua Xu 等NeurIPS 2023 · 被引用 41 次
它引用的顶会 Paper3
- Tensor Graph Convolutional Networks for Text ClassificationXien Liu, Xinxin You, Xiao Zhang, Ji Wu 等AAAI 2020 · 被引用 284 次
- HDMI: High-order Deep Multiplex InfomaxBaoyu Jing, Chanyoung Park, Hanghang TongWWW 2021 · 被引用 199 次
- Domain Adaptive Multi-Modality Neural Attention Network for Financial ForecastingDawei Zhou, Lecheng Zheng, Yada Zhu, Jianbo Li 等WWW 2020 · 被引用 51 次
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