Výsledky vyhledávání - Graph convolutional autoencoder

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    Symmetric Graph Convolutional Autoencoder for Unsupervised Graph Representation Learning Autor Park, Jiwoong, Lee, Minsik, Chang, Hyung Jin, Lee, Kyuewang, Choi, Jin Young

    ISSN: 2380-7504
    Vydáno: IEEE 01.10.2019
    “…We propose a symmetric graph convolutional autoencoder which produces a low-dimensional latent representation from a graph…”
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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
    Vydáno: Elsevier Inc 01.03.2025
    Vydáno 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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    Semi-supervised overlapping community detection in attributed graph with graph convolutional autoencoder Autor He, Chaobo, Zheng, Yulong, Cheng, Junwei, Tang, Yong, Chen, Guohua, Liu, Hai

    ISSN: 0020-0255, 1872-6291
    Vydáno: Elsevier Inc 01.08.2022
    Vydáno v Information sciences (01.08.2022)
    “… •An end-to-end method SSGCAE for overlapping community detection is proposed.•SSGCAE is based on graph convolutional autoencoder driven by community detection…”
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    An Elliptic Kernel Unsupervised Autoencoder-Graph Convolutional Network Ensemble Model for Hyperspectral Unmixing Autor Alfaro-Mejia, Estefania, Delgado, Carlos J., Manian, Vidya

    ISSN: 1939-1404, 2151-1535
    Vydáno: Piscataway IEEE 2025
    “… This article introduces the autoencoder graph ensemble model (AEGEM), a novel ensemble-based framework designed to enhance performance in both endmember extraction and abundance estimation…”
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    Early Parkinson's Disease Prediction Using rS-fMRI Functional Connectivity and Autoencoder Graph Convolutional Network Autor Limas, Lesbia Lopez, Manian, Vidya

    ISSN: 2169-3536, 2169-3536
    Vydáno: Piscataway IEEE 2025
    Vydáno v IEEE access (2025)
    “… We propose a deep learning framework that combines resting-state functional MRI (rs-fMRI) data and a Graph Convolutional Network (GCN…”
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    GCMCDTI: Graph convolutional autoencoder framework for predicting drug-target interactions based on matrix completion Autor Li, Jing, Zhang, Chen, Li, Zhengwei, Nie, Ru, Han, Pengyong, Yang, Wenjia, Liao, Hongmei

    ISSN: 1757-6334, 1757-6334
    Vydáno: 01.10.2022
    “… In this paper, we propose a novel model, named GCMCDTI, for DTIs prediction which adopts a graph convolutional network based on matrix completion…”
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    Graph convolutional autoencoders with co-learning of graph structure and node attributes Autor Wang, Jie, Liang, Jiye, Yao, Kaixuan, Liang, Jianqing, Wang, Dianhui

    ISSN: 0031-3203, 1873-5142
    Vydáno: Elsevier Ltd 01.01.2022
    Vydáno v Pattern recognition (01.01.2022)
    “… Second, for existing graph autoencoders models, the encoder and decoder are mainly composed of an initial graph convolutional network (GCN…”
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    A graph convolutional autoencoder approach to model order reduction for parametrized PDEs Autor Pichi, Federico, Moya, Beatriz, Hesthaven, Jan S.

    ISSN: 0021-9991, 1090-2716
    Vydáno: Elsevier Inc 15.03.2024
    Vydáno v Journal of computational physics (15.03.2024)
    “…The present work proposes a framework for nonlinear model order reduction based on a Graph Convolutional Autoencoder (GCA-ROM…”
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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 convolutional autoencoder model for the shape coding and cognition of buildings in maps Autor Yan, Xiongfeng, Ai, Tinghua, Yang, Min, Tong, Xiaohua

    ISSN: 1365-8816, 1362-3087, 1365-8824
    Vydáno: Abingdon Taylor & Francis 04.03.2021
    “… A graph convolutional autoencoder (GCAE) model comprising graph convolution and autoencoder architecture is proposed to analyze…”
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    Deformable Shape Completion with Graph Convolutional Autoencoders Autor Litany, Or, Bronstein, Alex, Bronstein, Michael, Makadia, Ameesh

    ISSN: 1063-6919
    Vydáno: IEEE 01.06.2018
    “… The core of our method is a variational autoencoder with graph convolutional operations that learns a latent space for complete realistic shapes…”
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    GCAEMDA: Predicting miRNA-disease associations via graph convolutional autoencoder Autor Li, Lei, Wang, Yu-Tian, Ji, Cun-Mei, Zheng, Chun-Hou, Ni, Jian-Cheng, Su, Yan-Sen

    ISSN: 1553-7358, 1553-734X, 1553-7358
    Vydáno: United States Public Library of Science 10.12.2021
    Vydáno v PLoS computational biology (10.12.2021)
    “…, diagnosis and treatment of extraordinary diseases. In this study, we presented a novel model named Graph Convolutional Autoencoder for miRNA-Disease Association Prediction (GCAEMDA…”
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    Graph Convolutional Autoencoder and Fully-Connected Autoencoder with Attention Mechanism Based Method for Predicting Drug-Disease Associations Autor Xuan, Ping, Gao, Ling, Sheng, Nan, Zhang, Tiangang, Nakaguchi, Toshiya

    ISSN: 2168-2194, 2168-2208, 2168-2208
    Vydáno: United States IEEE 01.05.2021
    “…Predicting novel uses for approved drugs helps in reducing the costs of drug development and facilitates the development process. Most of previous methods…”
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    Graph Convolutional Autoencoder and Generative Adversarial Network-Based Method for Predicting Drug-Target Interactions Autor Sun, Chang, Xuan, Ping, Zhang, Tiangang, Ye, Yilin

    ISSN: 1545-5963, 1557-9964, 1557-9964
    Vydáno: United States IEEE 01.01.2022
    “… We proposed a graph convolutional autoencoder and generative adversarial network (GAN)-based method, GANDTI, to predict DTIs…”
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    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
    Vydáno: London BioMed Central 29.07.2025
    Vydáno 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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    Drug-target interaction prediction based on spatial consistency constraint and graph convolutional autoencoder Autor Chen, Peng, Zheng, Haoran

    ISSN: 1471-2105, 1471-2105
    Vydáno: London BioMed Central 17.04.2023
    Vydáno v BMC bioinformatics (17.04.2023)
    “… It may limit the performance of the DTI prediction methods. Results Here, we propose a novel graph convolutional autoencoder-based model, named SDGAE, to predict DTIs…”
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    Federated learning enabled graph convolutional autoencoder and factorization machine for potential friendship prediction in social networks Autor Hu, He-xuan, Cao, Chengcheng, Hu, Qiang, Zhang, Ye

    ISSN: 1566-2535, 1872-6305
    Vydáno: Elsevier B.V 01.02.2024
    Vydáno v Information fusion (01.02.2024)
    “… Therefore, we design a potential friendship prediction model based on graph convolutional autoencoder and factorization machine (GCAFM…”
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    MSGCA: Drug-Disease Associations Prediction Based on Multi-Similarities Graph Convolutional Autoencoder Autor Wang, Ying, Gao, Ying-Lian, Wang, Juan, Li, Feng, Liu, Jin-Xing

    ISSN: 2168-2194, 2168-2208, 2168-2208
    Vydáno: United States IEEE 01.07.2023
    “… Hence, a prediction method based on multi-similarities graph convolutional autoencoder (MSGCA…”
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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
    Vydáno: 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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    GVDTI: graph convolutional and variational autoencoders with attribute-level attention for drug–protein interaction prediction Autor Xuan, Ping, Fan, Mengsi, Cui, Hui, Zhang, Tiangang, Nakaguchi, Toshiya

    ISSN: 1467-5463, 1477-4054, 1477-4054
    Vydáno: England Oxford University Press 17.01.2022
    Vydáno v Briefings in bioinformatics (17.01.2022)
    “… First, a framework based on graph convolutional autoencoder is constructed to learn attention-enhanced topological embedding that integrates the topology structure…”
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