Výsledky vyhledávání - Graph convolutional and variational autoencoders

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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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    Anomaly Detection Based on Graph Convolutional Network–Variational Autoencoder Model Using Time-Series Vibration and Current Data Autor Choi, Seung-Hwan, An, Dawn, Lee, Inho, Lee, Suwoong

    ISSN: 2227-7390, 2227-7390
    Vydáno: Basel MDPI AG 01.12.2024
    Vydáno v Mathematics (Basel) (01.12.2024)
    “…This paper proposes a deep learning-based anomaly detection method using time-series vibration and current data, which were obtained from endurance tests on…”
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    Subject Representation Learning from EEG using Graph Convolutional Variational Autoencoders Autor Mishra, Aditya, Samin, Ahnaf Mozib, Etemad, Ali, Hashemi, Javad

    ISSN: 2379-190X
    Vydáno: IEEE 06.04.2025
    “…We propose GC-VASE, a graph convolutional-based variational autoencoder that leverages contrastive learning for subject representation learning from EEG data…”
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    Graph-Variational Convolutional Autoencoder-Based Fault Detection and Diagnosis for Photovoltaic Arrays Autor Arifeen, Murshedul, Petrovski, Andrei, Hasan, Md Junayed, Noman, Khandaker, Navid, Wasib Ul, Haruna, Auwal

    ISSN: 2075-1702, 2075-1702
    Vydáno: Basel MDPI AG 01.12.2024
    Vydáno v Machines (Basel) (01.12.2024)
    “… This paper introduces a deep learning model that combines a graph convolutional network with a variational autoencoder to diagnose faults in solar arrays…”
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    DiffuScope: A diffusion-regularized autoencoder for spatial transcriptomic clustering Autor Shi, Hua, Yi, Ding, Cui, Yang, Wang, Ruheng, Li, Yan, Ao, Chunyan, Guo, Ruihua, Zhang, Weihang, Peng, Tao, Le, Yuying, Cui, Yaxuan, Wei, Leyi

    ISSN: 1476-9271, 1476-928X, 1476-928X
    Vydáno: England Elsevier Ltd 01.02.2026
    Vydáno v Computational biology and chemistry (01.02.2026)
    “… To address this challenge, we propose DiffuScope, a clustering framework based on Graph Convolutional Variational Autoencoders (GC-VAE…”
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    Graph convolutional network based on self-attention variational autoencoder and capsule contrastive learning for aspect-based sentiment analysis Autor Wang, Xinyue, Liu, Long, Chen, Zhuo, Wang, Haiyan, Yu, Bin

    ISSN: 0957-4174
    Vydáno: Elsevier Ltd 15.06.2025
    Vydáno v Expert systems with applications (15.06.2025)
    “… In response to these issues, this article puts forward a hybrid graph convolutional network (GCN…”
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    Scalable Graph Convolutional Variational Autoencoders Autor Unyi, Daniel, Gyires-Toth, Balint

    Vydáno: IEEE 19.05.2021
    “… Graph variational autoencoders achieved competitive results on various graph-related modeling tasks (e.g…”
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    Optimization of Graph Convolutional Networks with Variational Graph Autoencoder Architecture for 3D Face Reconstruction Task Autor Batarfi, Mahfoudh M., Mareboyana, Manohar

    ISSN: 2768-0754
    Vydáno: IEEE 08.05.2024
    “… To surmount these obstacles, the study embarks on the optimization of a Variational Graph Autoencoder (VGAE…”
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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
    Vydáno: 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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    Design of an Improved Model for Blockchain Forensics Using Graph Convolutional Networks and Variational Autoencoders Autor Bokade, Sweta A., Sharma, V.K., Manjre, Bhushan M.

    Vydáno: IEEE 20.12.2024
    “… detection should ideally be present. Current methods struggle to scale with and handle the graph-structured nature of data in blockchains, usually failing in the interpretability that's necessary for either trust or accountability…”
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    Handling information loss of graph convolutional networks in collaborative filtering Autor Xiong, Xin, Li, XunKai, Hu, YouPeng, Wu, YiXuan, Yin, Jian

    ISSN: 0306-4379, 1873-6076
    Vydáno: Elsevier Ltd 01.11.2022
    Vydáno v Information systems (Oxford) (01.11.2022)
    “… To solve the above problems, we propose Variational AutoEncoder-Enhanced Graph Convolutional Network (VE-GCN) for CF…”
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    Recommender Systems Based on Variational Autoencoders and Graph Convolutional Neural Networks Autor Kang, Peng

    ISBN: 9798582580331
    Vydáno: ProQuest Dissertations & Theses 01.01.2018
    “…The high prevalence of online social networks along with the rapid growth of mobile devices makes people have an easier access to large amounts of online…”
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    CVAM: CNA Profile Inference of the Spatial Transcriptome Based on the VGAE and HMM Autor Ma, Jian, Guo, Jingjing, Fan, Zhiwei, Zhao, Weiling, Zhou, Xiaobo

    ISSN: 2218-273X, 2218-273X
    Vydáno: Switzerland MDPI AG 28.04.2023
    Vydáno v Biomolecules (Basel, Switzerland) (28.04.2023)
    “…Tumors are often polyclonal due to copy number alteration (CNA) events. Through the CNA profile, we can understand the tumor heterogeneity and consistency. CNA…”
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    A broadband oscillation source location method based on LSTM variational autoencoder and graph convolutional neural network Autor Li, C., Wang, Y., Zheng, Z.

    Vydáno: The Institution of Engineering and Technology 2023
    “… Therefore, this paper proposes a wideband oscillation disturbance source localization method based on LSTM variational autoencoder signal compression and graph convolutional neural network…”
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    Graph variational autoencoder with affinity propagation for community-aware anomaly detection in attributed networks Autor Cao, Zhijie, Yang, Chengkun, Fan, Xiaoqing, Li, Lingjie, Lin, Qiuzhen, Li, Jianqiang, Ma, Lijia

    ISSN: 1568-4946
    Vydáno: Elsevier B.V 01.01.2026
    Vydáno v Applied soft computing (01.01.2026)
    “…) for community-aware ADAN. GVE-AP first employs a graph convolutional variational autoencoder to learn node embeddings from attributed networks…”
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    MODAPro: Explainable Heterogeneous Networks with Variational Graph Autoencoder for Mining Disease-Specific Functional Molecules and Pathways from Omics Data Autor Zhao, Jinhui, He, Jiarui, Guan, Pengwei, Bao, Han, Zhao, Xinjie, Zhao, Chunxia, Qin, Wangshu, Lu, Xin, Xu, Guowang

    ISSN: 1520-6882, 1520-6882
    Vydáno: United States 28.10.2025
    Vydáno v Analytical chemistry (Washington) (28.10.2025)
    “… To address these critical limitations, we introduce MODAPro, a biologically informed deep learning framework that synergistically integrates variational graph autoencoders (VAE…”
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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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    Enhancing microbe-disease association prediction via multi-view graph convolution and latent feature learning Autor Wang, Bo, Wu, Peilong, Du, Xiaoxin, Zhang, Chunyu, Fu, Shanshan, Sun, Tang, Yang, Xue

    ISSN: 1476-9271, 1476-928X, 1476-928X
    Vydáno: England Elsevier Ltd 01.12.2025
    Vydáno v 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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    RPI-GGCN: Prediction of RNA-Protein Interaction Based on Interpretability Gated Graph Convolution Neural Network and Co-Regularized Variational Autoencoders Autor Wang, Yifei, Ding, Pengju, Wang, Congjing, He, Shiyue, Gao, Xin, Yu, Bin

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Vydáno: United States IEEE 01.04.2025
    “… Given this, this study proposes the RPI-gated graph convolutional network (RPI-GGCN) method for predicting RPI based on the gated graph convolutional neural network (GGCN…”
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