Výsledky vyhledávání - temporal graph autoencoder

  1. 1

    TGAE: Temporal Graph Autoencoder for Travel Forecasting Autor Wang, Qiang, Jiang, Hao, Qiu, Meikang, Liu, Yifeng, Ye, Dongsheng

    ISSN: 1524-9050, 1558-0016
    Vydáno: New York IEEE 01.08.2023
    “… To confront these challenges, we treat the dynamic traffic networks as multiple weighted directed network snapshots and propose a graph-based deep learning framework, Temporal Graph Autoencoder (TGAE…”
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    A Spatial-Temporal Variational Graph Attention Autoencoder Using Interactive Information for Fault Detection in Complex Industrial Processes Autor Lv, Mingjie, Li, Yonggang, Liang, Huiping, Sun, Bei, Yang, Chunhua, Gui, Weihua

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Vydáno: United States IEEE 01.03.2024
    “… A spatial-temporal variational graph attention autoencoder (STVGATE) using interactive information is proposed for fault detection, which aims to effectively capture the spatial and temporal features of the interconnected…”
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  3. 3

    Multivariate time series anomaly detection with variational autoencoder and spatial–temporal graph network Autor Guan, Siwei, He, Zhiwei, Ma, Shenhui, Gao, Mingyu

    ISSN: 0167-4048, 1872-6208
    Vydáno: Elsevier Ltd 01.07.2024
    Vydáno v Computers & security (01.07.2024)
    “…–temporal graph networks and variational autoencoder (VAE). It employs…”
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  4. 4

    A Spatio‐Temporal Enhanced Graph‐Transformer AutoEncoder embedded pose for anomaly detection Autor Zhu, Honglei, Wei, Pengjuan, Xu, Zhigang

    ISSN: 1751-9632, 1751-9640
    Vydáno: Stevenage John Wiley & Sons, Inc 01.04.2024
    Vydáno v IET computer vision (01.04.2024)
    “…‐temporal dependencies of non‐Euclidean data such as human skeleton graphs, and the autoencoder based on this basic unit is widely used to model sequence features…”
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    Human-related anomalous event detection via spatial-temporal graph convolutional autoencoder with embedded long short-term memory network Autor Li, Nanjun, Chang, Faliang, Liu, Chunsheng

    ISSN: 0925-2312, 1872-8286
    Vydáno: Elsevier B.V 14.06.2022
    Vydáno v Neurocomputing (Amsterdam) (14.06.2022)
    “… Our network is established on a Spatial-temporal Graph Convolutional…”
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    Spatio-temporal graph convolutional autoencoder for transonic wing pressure distribution forecasting Autor Immordino, Gabriele, Vaiuso, Andrea, Da Ronch, Andrea, Righi, Marcello

    ISSN: 1270-9638
    Vydáno: Elsevier Masson SAS 01.10.2025
    Vydáno v Aerospace science and technology (01.10.2025)
    “…This study presents a framework for predicting unsteady transonic wing pressure distributions due to pitch and plunge movement, integrating an autoencoder architecture with graph convolutional…”
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    Graph autoencoder with mirror temporal convolutional networks for traffic anomaly detection Autor Ren, Zhiyu, Li, Xiaojie, Peng, Jing, Chen, Ken, Tan, Qushan, Wu, Xi, Shi, Canghong

    ISSN: 2045-2322, 2045-2322
    Vydáno: London Nature Publishing Group UK 13.01.2024
    Vydáno v Scientific reports (13.01.2024)
    “… In this paper, we propose a mirror temporal graph autoencoder (MTGAE) framework to explore anomalies and capture unseen nodes and the spatiotemporal correlation between nodes in the traffic network…”
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    Convolutional Graph Autoencoder: A Generative Deep Neural Network for Probabilistic Spatio-Temporal Solar Irradiance Forecasting Autor Khodayar, Mahdi, Mohammadi, Saeed, Khodayar, Mohammad E., Wang, Jianhui, Liu, Guangyi

    ISSN: 1949-3029, 1949-3037
    Vydáno: Piscataway IEEE 01.04.2020
    “… This probabilistic data generation model, i.e., convolutional graph autoencoder (CGAE), is devised based on the localized first-order approximation…”
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    Graph Masked Autoencoder for Spatio-Temporal Graph Learning Autor Zhang, Qianru, Wang, Haixin, Siu-Ming Yiu, Yin, Hongzhi

    ISSN: 2331-8422
    Vydáno: Ithaca Cornell University Library, arXiv.org 14.10.2024
    Vydáno v arXiv.org (14.10.2024)
    “… To address these challenges, we propose a novel spatio-temporal graph masked autoencoder paradigm that explores generative self-supervised learning for effective spatio-temporal data augmentation…”
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    Edge-Focused Temporal Graph Autoencoders for Anomalous Link Prediction in OT Networks Autor Howe, Alex, Papa, Mauricio

    ISSN: 2768-1831
    Vydáno: IEEE 24.04.2025
    “… The proposed approach proposes a novel edge-focused temporal graph autoencoder that explicitly models edge features alongside temporal variations to improve intrusion detection performance…”
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    Spatial-Temporal Graph Discriminant AutoEncoder for Traffic Congestion Forecasting Autor Peng, Jiaheng, Guan, Tong, Liang, Jun

    ISSN: 2153-0017
    Vydáno: IEEE 24.09.2023
    “… In this paper, we propose a novel algorithm, the Spatial-Temporal Graph Discriminant Autoencoder (STGDAE…”
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    Temporal Graph Convolutional Autoencoder based Fault Detection for Renewable Energy Applications Autor Arifeen, Murshedul, Petrovski, Andrei

    ISSN: 2769-3899
    Vydáno: IEEE 12.05.2024
    “… To address this issue, we propose an autoencoder model that uses a temporal graph convolutional layer to detect faults in the energy generation process…”
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    An Integrated Temporal Graph Neural Network and Autoencoder Model for Real-Time Credit Card Fraud Detection Autor Aich, Mrinmoy, Oggu, Vijaya Bhaskar, Sankaran, Mohan, H K, Keerthi, Sataar, Zahrah

    Vydáno: IEEE 22.08.2025
    “… However, existing Graph Neural Network (GNN) to detect relational fraud patterns across entities and autoencoder to identify anomalous transactions struggles…”
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    A Comprehensive Survey on Graph Neural Networks Autor Wu, Zonghan, Pan, Shirui, Chen, Fengwen, Long, Guodong, Zhang, Chengqi, Yu, Philip S.

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Vydáno: United States IEEE 01.01.2021
    “…-Euclidean domains and are represented as graphs with complex relationships and interdependency between objects…”
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    Spatio-Temporal Denoising Graph Autoencoders with Data Augmentation for Photovoltaic Timeseries Data Imputation Autor Fan, Yangxin, Yu, Xuanji, Wieser, Raymond, Meakin, David, Shaton, Avishai, Jean-Nicolas Jaubert, Flottemesch, Robert, Howell, Michael, Braid, Jennifer, Bruckman, Laura S, French, Roger, Wu, Yinghui

    ISSN: 2331-8422
    Vydáno: Ithaca Cornell University Library, arXiv.org 21.02.2023
    Vydáno v arXiv.org (21.02.2023)
    “… This paper proposes a novel Spatio-Temporal Denoising Graph Autoencoder (STD-GAE) framework to impute missing PV Power Data…”
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    A Novel Unsupervised Structural Damage Detection Method Based on TCN-GAT Autoencoder Autor Ni, Yanchun, Jin, Qiyuan, Hu, Rui

    ISSN: 1424-8220, 1424-8220
    Vydáno: Switzerland MDPI AG 03.11.2025
    Vydáno v Sensors (Basel, Switzerland) (03.11.2025)
    “… This paper proposes an autoencoder model integrating Temporal Convolutional Networks (TCN) and Graph Attention Networks (GAT…”
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    Efficient Learning-Based Graph Simulation for Temporal Graphs Autor Xiang, Sheng, Xu, Chenhao, Cheng, Dawei, Wang, Xiaoyang, Zhang, Ying

    ISSN: 2375-026X
    Vydáno: IEEE 19.05.2025
    Vydáno v Data engineering (19.05.2025)
    “… In real-life applications, e.g. social science, biology, and chemistry, many graphs are composed of a series of evolving graphs (i.e., temporal graphs…”
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    A novel dynamic spatio-temporal graph based condition monitoring framework for consistency retention of digital twin Autor Wang, Xiaofeng, Yan, Jihong, Xu, Xun

    ISSN: 0278-6125
    Vydáno: Elsevier Ltd 01.04.2025
    Vydáno v Journal of manufacturing systems (01.04.2025)
    “… On this basis, unsupervised learning is further combined to form a dynamic spatio-temporal graph based condition monitoring framework for DT consistency retention…”
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    Network Anomaly Detection Integrating Dynamic Graph Embedding and Transformer Autoencoder Autor ZHANG Anqin, DING Zhifeng

    ISSN: 1000-3428
    Vydáno: Editorial Office of Computer Engineering 15.04.2025
    Vydáno v Ji suan ji gong cheng (15.04.2025)
    “… Most existing graph-embedding-based methods are designed for static graphs and neglect fine-grained temporal information, thus failing to capture the continuity of dynamic network behaviors…”
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