Search Results - Dynamic graph convolutional autoencoder

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  1. 1

    Dynamic graph convolutional autoencoder with node-attribute-wise attention for kidney and tumor segmentation from CT volumes by Xuan, Ping, Cui, Hui, Zhang, Hongda, Zhang, Tiangang, Wang, Linlin, Nakaguchi, Toshiya, Duh, Henry B.L.

    ISSN: 0950-7051, 1872-7409
    Published: Amsterdam Elsevier B.V 25.01.2022
    Published in Knowledge-based systems (25.01.2022)
    “… We propose a novel dynamic graph convolution (DGC) autoencoder with node-attribute-wise attention (NodeAttri-Attention…”
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    Journal Article
  2. 2

    Drug-target interaction prediction based on graph convolutional autoencoder with dynamic weighting residual GCN by Zeng, Ming, Wang, Min, Xie, Fuqiang, Ji, Zhiwei

    ISSN: 1471-2105, 1471-2105
    Published: London BioMed Central 29.07.2025
    Published in BMC bioinformatics (29.07.2025)
    “… of network’s representation capabilities. Results In this paper, we propose a graph convolutional autoencoder model, named DDGAE, for DTIs prediction…”
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    Journal Article
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  4. 4

    GDGC-AE: A New Approach to Mechanical Anomaly Detection Based on Graph Convolutional Networks and Autoencoders by Zhang, Mingzhe, Su, Zhengchang, Hao, Pengyuan, Lin, Zesheng, Wang, Huaqing, Song, Liuyang

    Published: IEEE 31.10.2024
    “… In this paper, a global dynamic graph convolutional autoencoder (GDGC-AE) model based on Chebyshev convolution is proposed to cope with the above problems…”
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    Conference Proceeding
  5. 5

    Seismic damage identification by graph convolutional autoencoder using adjacency matrix based on structural modes by Kim, Minkyu, Song, Junho

    ISSN: 0098-8847, 1096-9845
    Published: Bognor Regis Wiley Subscription Services, Inc 01.02.2024
    “…‐time damage identification by a graph convolutional autoencoder (GCAE) based on seismic responses of the structural system…”
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    Journal Article
  6. 6

    Enhancing microbe-disease association prediction via multi-view graph convolution and latent feature learning by Wang, Bo, Wu, Peilong, Du, Xiaoxin, Zhang, Chunyu, Fu, Shanshan, Sun, Tang, Yang, Xue

    ISSN: 1476-9271, 1476-928X, 1476-928X
    Published: England Elsevier Ltd 01.12.2025
    Published in Computational biology and chemistry (01.12.2025)
    “… MVGCVAE is the first model to synergistically integrate multi-view graph convolutional networks (GCNs…”
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    Journal Article
  7. 7

    Deep anomaly detection in horizontal axis wind turbines using Graph Convolutional Autoencoders for Multivariate Time series by Miele, Eric Stefan, Bonacina, Fabrizio, Corsini, Alessandro

    ISSN: 2666-5468, 2666-5468
    Published: Elsevier Ltd 01.05.2022
    Published in Energy and AI (01.05.2022)
    “… We introduce a promising neural architecture, namely a Graph Convolutional Autoencoder for Multivariate Time series, to model the sensor network as a dynamical functional graph…”
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    Journal Article
  8. 8

    A Novel Unsupervised Structural Damage Detection Method Based on TCN-GAT Autoencoder by Ni, Yanchun, Jin, Qiyuan, Hu, Rui

    ISSN: 1424-8220, 1424-8220
    Published: Switzerland MDPI AG 03.11.2025
    Published in 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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    Journal Article
  9. 9

    Recurrent graph convolutional multi-mesh autoencoder for unsteady transonic aerodynamics by Massegur, David, Da Ronch, Andrea

    ISSN: 0889-9746
    Published: Elsevier Ltd 01.12.2024
    Published in Journal of fluids and structures (01.12.2024)
    “… This work presents a geometric-deep-learning multi-mesh autoencoder framework to predict the spatial and temporal evolution of aerodynamic loads for a finite-span wing undergoing different types of motion…”
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    Journal Article
  10. 10

    Convolutional Graph Autoencoder: A Generative Deep Neural Network for Probabilistic Spatio-Temporal Solar Irradiance Forecasting by Khodayar, Mahdi, Mohammadi, Saeed, Khodayar, Mohammad E., Wang, Jianhui, Liu, Guangyi

    ISSN: 1949-3029, 1949-3037
    Published: Piscataway IEEE 01.04.2020
    Published in IEEE transactions on sustainable energy (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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    Journal Article
  11. 11

    Predicting transonic flowfields in non–homogeneous unstructured grids using autoencoder graph convolutional networks by Immordino, Gabriele, Vaiuso, Andrea, Da Ronch, Andrea, Righi, Marcello

    ISSN: 0021-9991
    Published: Elsevier Inc 01.03.2025
    Published in Journal of computational physics (01.03.2025)
    “… Our approach leverages geometric deep learning, specifically through the use of an autoencoder architecture built on graph convolutional networks…”
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    Journal Article
  12. 12

    iCircDA-NEAE: Accelerated attribute network embedding and dynamic convolutional autoencoder for circRNA-disease associations prediction by Yuan, Lin, Zhao, Jiawang, Shen, Zhen, Zhang, Qinhu, Geng, Yushui, Zheng, Chun-Hou, Huang, De-Shuang

    ISSN: 1553-7358, 1553-734X, 1553-7358
    Published: United States Public Library of Science 01.08.2023
    Published in PLoS computational biology (01.08.2023)
    “…Accumulating evidence suggests that circRNAs play crucial roles in human diseases. CircRNA-disease association prediction is extremely helpful in understanding…”
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    Journal Article
  13. 13

    AI-based clinical assessment of optic nerve head robustness superseding biomechanical testing by Braeu, Fabian A, Chuangsuwanich, Thanadet, Tun, Tin A, Perera, Shamira, Husain, Rahat, Thiery, Alexandre H, Aung, Tin, Barbastathis, George, Girard, Michaël J A

    ISSN: 0007-1161, 1468-2079, 1468-2079
    Published: BMA House, Tavistock Square, London, WC1H 9JR BMJ Publishing Group Ltd 01.02.2024
    Published in British journal of ophthalmology (01.02.2024)
    “…Background/aimsTo use artificial intelligence (AI) to: (1) exploit biomechanical knowledge of the optic nerve head (ONH) from a relatively large population;…”
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    Journal Article
  14. 14

    Graph convolutional multi-mesh autoencoder for steady transonic aircraft aerodynamics by Massegur, David, Da Ronch, Andrea

    ISSN: 2632-2153, 2632-2153
    Published: Bristol IOP Publishing 01.06.2024
    Published in Machine learning: science and technology (01.06.2024)
    “…Calculating aerodynamic loads around an aircraft using computational fluid dynamics…”
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    Journal Article
  15. 15

    Graph autoencoder with mirror temporal convolutional networks for traffic anomaly detection by Ren, Zhiyu, Li, Xiaojie, Peng, Jing, Chen, Ken, Tan, Qushan, Wu, Xi, Shi, Canghong

    ISSN: 2045-2322, 2045-2322
    Published: London Nature Publishing Group UK 13.01.2024
    Published in 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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    Journal Article
  16. 16

    Graph-informed convolutional autoencoder to classify brain responses during sleep by Zakeri, Sahar, Makouei, Somayeh, Danishvar, Sebelan

    ISSN: 1662-453X, 1662-4548, 1662-453X
    Published: Switzerland Frontiers Media S.A 28.04.2025
    Published in Frontiers in neuroscience (28.04.2025)
    “…Automated machine-learning algorithms that analyze biomedical signals have been used to identify sleep patterns and health issues. However, their performance…”
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    Journal Article
  17. 17

    Multi-modal graph convolutional network for vessel trajectory prediction based on cooperative intention enhance using conditional variational autoencoder by Jiang, Junhao, Zuo, Yi, Li, Zhiyuan

    ISSN: 0951-8320
    Published: Elsevier Ltd 01.03.2026
    Published in Reliability engineering & system safety (01.03.2026)
    “… of trajectory prediction. To address these challenges, we propose a cooperative intention enhance multi-modal graph convolutional network (CIE-MGCN…”
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    Journal Article
  18. 18

    ERA-WGAT: Edge-enhanced residual autoencoder with a window-based graph attention convolutional network for low-dose CT denoising by Liu, Han, Liao, Peixi, Chen, Hu, Zhang, Yi

    ISSN: 2156-7085, 2156-7085
    Published: United States Optica Publishing Group 01.11.2022
    Published in Biomedical optics express (01.11.2022)
    “… and a window-based graph attention convolutional network that combines static and dynamic attention modules to explore non-local self-similarity…”
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    Journal Article
  19. 19

    Spatio-temporal graph convolutional autoencoder for transonic wing pressure distribution forecasting by Immordino, Gabriele, Vaiuso, Andrea, Da Ronch, Andrea, Righi, Marcello

    ISSN: 1270-9638
    Published: Elsevier Masson SAS 01.10.2025
    Published in 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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    Journal Article
  20. 20

    PT-TDGCN: Pre-Trained Trend-Aware Dynamic Graph Convolutional Network for Traffic Flow Prediction by Yang, Hanqing, Wei, Sen, Wang, Yuanqing

    ISSN: 1424-8220, 1424-8220
    Published: Switzerland MDPI AG 03.11.2025
    Published in Sensors (Basel, Switzerland) (03.11.2025)
    “… To address these issues, we propose the Pre-trained Trend-aware Dynamic Graph Convolutional Network (PT-TDGCN…”
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    Journal Article