Search Results - "graph autoencoder"

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  1. 1

    Deep Learning on Graphs: A Survey by Zhang, Ziwei, Cui, Peng, Zhu, Wenwu

    ISSN: 1041-4347, 1558-2191
    Published: New York IEEE 01.01.2022
    “…Deep learning has been shown to be successful in a number of domains, ranging from acoustics, images, to natural language processing. However, applying deep…”
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    Journal Article
  2. 2

    Multi-view representation model based on graph autoencoder by Li, Jingci, Lu, Guangquan, Wu, Zhengtian, Ling, Fuqing

    ISSN: 0020-0255, 1872-6291
    Published: Elsevier Inc 01.06.2023
    Published in Information sciences (01.06.2023)
    “…Graph representation learning is a hot topic in non-Euclidean data in various domains, such as social networks, biological networks, etc. When some data labels…”
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  3. 3

    Assessing citation appropriateness through masked graph autoencoder by Avros, Renata, Volkovich, Zeev

    ISSN: 1877-0509, 1877-0509
    Published: Elsevier B.V 2025
    Published in Procedia computer science (2025)
    “…This study proposes a novel network-based detection method for assessing citation reliability and identifying manipulative practices. Applying a Masked Graph…”
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  4. 4

    A Comprehensive Survey on Graph Neural Networks by Wu, Zonghan, Pan, Shirui, Chen, Fengwen, Long, Guodong, Zhang, Chengqi, Yu, Philip S.

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Published: United States IEEE 01.01.2021
    “…Deep learning has revolutionized many machine learning tasks in recent years, ranging from image classification and video processing to speech recognition and…”
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  5. 5

    Deep embedded clustering with distribution consistency preservation for attributed networks by Zheng, Yimei, Jia, Caiyan, Yu, Jian, Li, Xuanya

    ISSN: 0031-3203, 1873-5142
    Published: Elsevier Ltd 01.07.2023
    Published in Pattern recognition (01.07.2023)
    “…•A distribution consistency preserving deep embedded clustering model is proposed.•The model exploits GAE and AE to learn node representations and clusters…”
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  6. 6

    Attribute imputation autoencoders for attribute-missing graphs by Xia, Riting, Zhang, Chunxu, Li, Anchen, Liu, Xueyan, Yang, Bo

    ISSN: 0950-7051, 1872-7409
    Published: Elsevier B.V 12.05.2024
    Published in Knowledge-based systems (12.05.2024)
    “…Analyzing attribute-missing graphs with a complete topology, but missing the attributes of some nodes, is an emerging and challenging research topic. Data…”
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  7. 7

    Learning Graph Embedding With Adversarial Training Methods by Pan, Shirui, Hu, Ruiqi, Fung, Sai-Fu, Long, Guodong, Jiang, Jing, Zhang, Chengqi

    ISSN: 2168-2267, 2168-2275, 2168-2275
    Published: United States IEEE 01.06.2020
    Published in IEEE transactions on cybernetics (01.06.2020)
    “…Graph embedding aims to transfer a graph into vectors to facilitate subsequent graph-analytics tasks like link prediction and graph clustering. Most approaches…”
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  8. 8

    Weighted dynamic network link prediction based on graph autoencoder by Mei, Peng, Zhao, Yuhong, Wang, Jingyu, Liang, Yefei

    ISSN: 0020-0255
    Published: Elsevier Inc 01.12.2025
    Published in Information sciences (01.12.2025)
    “…With the development of deep learning, Graph Autoencoders (GAE) within unsupervised learning frameworks have been widely applied to representation learning in…”
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  9. 9

    NodeHGAE: Node-oriented heterogeneous graph autoencoder by Zhu, Xiangkai, Li, Chao, Yan, Yeyu, Zhao, Zhongying, Duan, Hua, Zeng, Qingtian

    ISSN: 0020-0255
    Published: Elsevier Inc 01.11.2025
    Published in Information sciences (01.11.2025)
    “…Heterogeneous graph autoencoder (HGAE), as an unsupervised learning approach, aims to encode nodes and edges of heterogeneous graphs into low-dimensional…”
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  10. 10

    Graph-Based Bitcoin Fraud Detection Using Variational Graph Autoencoders and Supervised Learning by Koronaios, Argyrios, Koloniari, Georgia

    ISSN: 1877-0509, 1877-0509
    Published: Elsevier B.V 2025
    Published in Procedia computer science (2025)
    “…Bitcoin is a decentralized cryptocurrency, which is rapidly growing and offering many advantages. Although its structure protects users from some types of…”
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  11. 11

    Spatial-Spectral Graph Contrastive Clustering With Hard Sample Mining for Hyperspectral Images by Guan, Renxiang, Tu, Wenxuan, Li, Zihao, Yu, Hao, Hu, Dayu, Chen, Yuzeng, Tang, Chang, Yuan, Qiangqiang, Liu, Xinwang

    ISSN: 0196-2892, 1558-0644
    Published: IEEE 2024
    “…Hyperspectral image (HSI) clustering is a fundamental yet challenging task that groups image pixels with similar features into distinct clusters. Among various…”
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  12. 12

    Cross-domain recommendation via knowledge distillation by Li, Xiuze, Huang, Zhenhua, Wu, Zhengyang, Wang, Changdong, Chen, Yunwen

    ISSN: 0950-7051
    Published: Elsevier B.V 28.02.2025
    Published in Knowledge-based systems (28.02.2025)
    “…Recommendation systems frequently suffer from data sparsity, resulting in less-than-ideal recommendations. A prominent solution to this problem is Cross-Domain…”
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  13. 13

    A deep learning approach for polyline and building simplification based on graph autoencoder with flexible constraints by Yan, Xiongfeng, Yang, Min

    ISSN: 1523-0406, 1545-0465
    Published: Taylor & Francis 02.01.2024
    “…Polyline and building simplification remain challenging in cartography. Most proposed algorithms are geometric-based and rely on specific rules. In this study,…”
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  14. 14

    Enhancing effective connection with link prediction for session-based recommendation by Wang, Hui, You, Junjie, Yi, Jianbing, Liu, Junyan, Huang, Runjie

    ISSN: 0925-2312
    Published: Elsevier B.V 07.11.2025
    Published in Neurocomputing (Amsterdam) (07.11.2025)
    “…The core objective of session-based recommendation (SBR) is to precisely capture user interest preferences from massive candidate items by modeling short-term…”
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  15. 15

    Clustering Diffusion Model with Frequency-Signal Modulation for Variational Graph Autoencoders by Cheng, Junwei, Liang, Ke, Feng, Pengxing, Liu, Weixiong, Tang, Yong, He, Chaobo

    ISSN: 0162-8828, 1939-3539, 2160-9292, 1939-3539
    Published: United States IEEE 25.09.2025
    “…Variational autoencoders (VAEs) have been widely used for node clustering, with existing methods mainly focusing on enhancing the expressiveness of their…”
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  16. 16

    Enhancing equipment safeguarding in IIoT: A self-supervised fault diagnosis paradigm based on asymmetric graph autoencoder by Chen, Zhuohang, Liu, Shen, Li, Chao, Chang, Yuanhong, Chen, Jinglong, Feng, Gaoshan, He, Shuilong

    ISSN: 0950-7051, 1872-7409
    Published: Elsevier B.V 19.07.2024
    Published in Knowledge-based systems (19.07.2024)
    “…Thanks to the sufficient monitoring data provided by Industrial Internet of Things (IIoT), intelligent fault diagnosis technology has demonstrated remarkable…”
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  17. 17

    RARE: Robust Masked Graph Autoencoder by Tu, Wenxuan, Liao, Qing, Zhou, Sihang, Peng, Xin, Ma, Chuan, Liu, Zhe, Liu, Xinwang, Cai, Zhiping, He, Kunlun

    ISSN: 1041-4347, 1558-2191
    Published: IEEE 01.10.2024
    “…Masked graph autoencoder (MGAE) has emerged as a promising self-supervised graph pre-training (SGP) paradigm due to its simplicity and effectiveness. However,…”
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  18. 18

    Variational graph autoencoder-driven balancing strategy for multimodal multi-objective optimization by Yang, Lei, Zhang, Erlei, Dang, Qianlong

    ISSN: 0020-0255
    Published: Elsevier Inc 01.09.2025
    Published in Information sciences (01.09.2025)
    “…Multimodal multi-objective optimization aims to balance the diversity and the convergence to obtain multiple complete and uniform Pareto optimal solution sets…”
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  19. 19

    TraverseNet: Unifying Space and Time in Message Passing for Traffic Forecasting by Wu, Zonghan, Zheng, Da, Pan, Shirui, Gan, Quan, Long, Guodong, Karypis, George

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Published: United States IEEE 01.02.2024
    “…This article aims to unify spatial dependency and temporal dependency in a non-Euclidean space while capturing the inner spatial-temporal dependencies for…”
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  20. 20

    A Novel Group Recommendation Model With Two-Stage Deep Learning by Huang, Zhenhua, Liu, Yajun, Zhan, Choujun, Lin, Chen, Cai, Weiwei, Chen, Yunwen

    ISSN: 2168-2216, 2168-2232
    Published: New York IEEE 01.09.2022
    “…Group recommendation has recently drawn a lot of attention to the recommender system community. Currently, several deep learning-based approaches are leveraged…”
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