Výsledky vyhľadávania - (dynamic OR dynamika) graph convolutional autoencoder

  1. 1

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

    ISSN: 1471-2105, 1471-2105
    Vydavateľské údaje: London BioMed Central 29.07.2025
    Vydané v 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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    Recurrent graph convolutional multi-mesh autoencoder for unsteady transonic aerodynamics Autor Massegur, David, Da Ronch, Andrea

    ISSN: 0889-9746
    Vydavateľské údaje: Elsevier Ltd 01.12.2024
    Vydané v 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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    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
    Vydavateľské údaje: 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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    Predicting transonic flowfields in non–homogeneous unstructured grids using autoencoder graph convolutional networks Autor Immordino, Gabriele, Vaiuso, Andrea, Da Ronch, Andrea, Righi, Marcello

    ISSN: 0021-9991
    Vydavateľské údaje: Elsevier Inc 01.03.2025
    Vydané v 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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    iCircDA-NEAE: Accelerated attribute network embedding and dynamic convolutional autoencoder for circRNA-disease associations prediction Autor Yuan, Lin, Zhao, Jiawang, Shen, Zhen, Zhang, Qinhu, Geng, Yushui, Zheng, Chun-Hou, Huang, De-Shuang

    ISSN: 1553-7358, 1553-734X, 1553-7358
    Vydavateľské údaje: United States Public Library of Science 01.08.2023
    Vydané v 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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    Dynamic graph convolutional autoencoder with node-attribute-wise attention for kidney and tumor segmentation from CT volumes Autor Xuan, Ping, Cui, Hui, Zhang, Hongda, Zhang, Tiangang, Wang, Linlin, Nakaguchi, Toshiya, Duh, Henry B.L.

    ISSN: 0950-7051, 1872-7409
    Vydavateľské údaje: Amsterdam Elsevier B.V 25.01.2022
    Vydané v 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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    Graph convolutional multi-mesh autoencoder for steady transonic aircraft aerodynamics Autor Massegur, David, Da Ronch, Andrea

    ISSN: 2632-2153, 2632-2153
    Vydavateľské údaje: Bristol IOP Publishing 01.06.2024
    “…Calculating aerodynamic loads around an aircraft using computational fluid dynamics…”
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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
    Vydavateľské údaje: London Nature Publishing Group UK 13.01.2024
    Vydané 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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    Graph-informed convolutional autoencoder to classify brain responses during sleep Autor Zakeri, Sahar, Makouei, Somayeh, Danishvar, Sebelan

    ISSN: 1662-453X, 1662-4548, 1662-453X
    Vydavateľské údaje: Switzerland Frontiers Media S.A 28.04.2025
    Vydané v 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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    Multi-modal graph convolutional network for vessel trajectory prediction based on cooperative intention enhance using conditional variational autoencoder Autor Jiang, Junhao, Zuo, Yi, Li, Zhiyuan

    ISSN: 0951-8320
    Vydavateľské údaje: Elsevier Ltd 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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    Seismic damage identification by graph convolutional autoencoder using adjacency matrix based on structural modes Autor Kim, Minkyu, Song, Junho

    ISSN: 0098-8847, 1096-9845
    Vydavateľské údaje: 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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    ERA-WGAT: Edge-enhanced residual autoencoder with a window-based graph attention convolutional network for low-dose CT denoising Autor Liu, Han, Liao, Peixi, Chen, Hu, Zhang, Yi

    ISSN: 2156-7085, 2156-7085
    Vydavateľské údaje: United States Optica Publishing Group 01.11.2022
    Vydané v 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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    Spatio-temporal graph convolutional autoencoder for transonic wing pressure distribution forecasting Autor Immordino, Gabriele, Vaiuso, Andrea, Da Ronch, Andrea, Righi, Marcello

    ISSN: 1270-9638
    Vydavateľské údaje: Elsevier Masson SAS 01.10.2025
    Vydané 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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    Dynamic Semantic Compression for CNN Inference in Multi-Access Edge Computing: A Graph Reinforcement Learning-Based Autoencoder Autor Li, Nan, Iosifidis, Alexandros, Zhang, Qi

    ISSN: 1536-1276, 1558-2248
    Vydavateľské údaje: New York IEEE 01.03.2025
    “…This paper studies the computational offloading of CNN inference in dynamic multi-access edge computing (MEC) networks…”
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    Deep anomaly detection in horizontal axis wind turbines using Graph Convolutional Autoencoders for Multivariate Time series Autor Miele, Eric Stefan, Bonacina, Fabrizio, Corsini, Alessandro

    ISSN: 2666-5468, 2666-5468
    Vydavateľské údaje: Elsevier Ltd 01.05.2022
    Vydané v 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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    Mesh Convolutional Autoencoder for Semi-Regular Meshes of Different Sizes Autor Hahner, Sara, Garcke, Jochen

    ISSN: 2642-9381
    Vydavateľské údaje: IEEE 01.01.2022
    “…The analysis of deforming 3D surface meshes is accelerated by autoencoders since the low-dimensional embeddings can be used to visualize underlying dynamics…”
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    Predicting potential microbe-disease associations based on heterogeneous graph attention network and deep sparse autoencoder Autor Wang, Bo, Zhao, Wenlong, Du, Xiaoxin, Zhang, Jianfei, Zhang, Chunyu, Wang, Liping, He, Yang

    ISSN: 0952-1976
    Vydavateľské údaje: Elsevier Ltd 01.05.2025
    “… We propose a computational framework called graph attention convolutional deep sparse autoencoder microbe-disease association (GCDSAEMDA…”
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    Graph Laplacian-Improved Convolutional Residual Autoencoder for Unsupervised Human Action and Emotion Recognition Autor Paoletti, Giancarlo, Beyan, Cigdem, Del Bue, Alessio

    ISSN: 2169-3536, 2169-3536
    Vydavateľské údaje: Piscataway IEEE 01.01.2022
    Vydané v IEEE access (01.01.2022)
    “… To lessen these shortcomings, this paper proposes a convolutional residual autoencoder…”
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    A Spatio‐Temporal Enhanced Graph‐Transformer AutoEncoder embedded pose for anomaly detection Autor Zhu, Honglei, Wei, Pengjuan, Xu, Zhigang

    ISSN: 1751-9632, 1751-9640
    Vydavateľské údaje: Stevenage John Wiley & Sons, Inc 01.04.2024
    Vydané v IET computer vision (01.04.2024)
    “…‐based video anomaly detection in recent years. The spatio‐temporal graph convolutional network has been proven to be effective in modelling the spatio…”
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