Výsledky vyhľadávania - Attributed networks autoencoder

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    Anomalous node detection in attributed social networks using dual variational autoencoder with generative adversarial networks Autor Khan, Wasim, Abidin, Shafiqul, Arif, Mohammad, Ishrat, Mohammad, Haleem, Mohd, Shaikh, Anwar Ahamed, Farooqui, Nafees Akhtar, Faisal, Syed Mohd

    ISSN: 2666-7649, 2666-7649
    Vydavateľské údaje: Elsevier B.V 01.06.2024
    Vydané v Data science and management (01.06.2024)
    “… Anomalous nodes in node-attributed networks can be identified with greater precision if both graph and node attributes are taken into account…”
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    Anomalydae: Dual Autoencoder for Anomaly Detection on Attributed Networks Autor Fan, Haoyi, Zhang, Fengbin, Li, Zuoyong

    ISSN: 2379-190X
    Vydavateľské údaje: IEEE 01.05.2020
    “…Anomaly detection on attributed networks aims at finding nodes whose patterns deviate significantly from the majority of reference nodes, which is pervasive in many applications such as network…”
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    Anomaly Detection with Deep Graph Autoencoders on Attributed Networks Autor Zhu, Dali, Ma, Yuchen, Liu, Yinlong

    ISSN: 2642-7389
    Vydavateľské údaje: IEEE 01.07.2020
    “…Anomaly detection on attributed networks aims to differentiate rare nodes that are significantly different from the majority…”
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    Deep autoencoder architecture with outliers for temporal attributed network embedding Autor Mo, Xian, Pang, Jun, Liu, Zhiming

    ISSN: 0957-4174, 1873-6793
    Vydavateľské údaje: Elsevier Ltd 15.04.2024
    Vydané v Expert systems with applications (15.04.2024)
    “…Temporal attributed network embedding aspires to learn a low-dimensional vector representation for each node in each snapshot of a temporal network, which can be capable of various network analysis…”
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    Learning graph deep autoencoder for anomaly detection in multi-attributed networks Autor Shao, Minglai, Lin, Yujie, Peng, Qiyao, Zhao, Jun, Pei, Zhan, Sun, Yueheng

    ISSN: 0950-7051, 1872-7409
    Vydavateľské údaje: Elsevier B.V 25.01.2023
    Vydané v Knowledge-based systems (25.01.2023)
    “…Anomaly detection in multi-attributed networks has become increasingly important and has significant implications in various domains, such as intrusion detection, botnet detection, financial fraud…”
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    Redundancy-aware masked graph autoencoder for overlapping community detection in attributed networks Autor Xie, Hongkai, Ying, Xinyi, Wang, Xiaofeng, Qi, Yuanyuan, Chen, Wei, Huang, Xiaofeng, Jiang, Junzheng, Quan, Daying

    ISSN: 0952-1976
    Vydavateľské údaje: Elsevier Ltd 26.12.2025
    “…Overlapping community detection is a critical task in complex network analysis, especially for real-world graphs where nodes participate in multiple communities…”
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    Deep Attributed Network Embedding via Weisfeiler-Lehman and Autoencoder Autor Al-Furas, Amr Thabit, Alrahmawy, Mohammed F., Al-Adrousy, Waleed Mohamed, Elmougy, Samir

    ISSN: 2169-3536, 2169-3536
    Vydavateľské údaje: Piscataway IEEE 2022
    Vydané v IEEE access (2022)
    “… In the present paper, a Deep Attributed Network Embedding via Weisfeiler-Lehman and Autoencoder (DANE-WLA…”
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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
    Vydavateľské údaje: Elsevier B.V 01.01.2026
    Vydané 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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    DVAEGMM: Dual Variational Autoencoder With Gaussian Mixture Model for Anomaly Detection on Attributed Networks Autor Khan, Wasim, Haroon, Mohammad, Khan, Ahmad Neyaz, Hasan, Mohammad Kamrul, Khan, Asif, Mokhtar, Umi Asma, Islam, Shayla

    ISSN: 2169-3536, 2169-3536
    Vydavateľské údaje: Piscataway IEEE 2022
    Vydané v IEEE access (2022)
    “…A significant aspect of today's digital information is attributed networks, which combine multiple node attributes with the basic network topology to extract knowledge…”
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    Unsupervised graph attention autoencoder clustering-oriented for community detection in attributed networks Autor Bekkair, Abdelfateh, Bellaouar, Slimane, Oulad-Naoui, Slimane

    ISSN: 2364-415X, 2364-4168
    Vydavateľské údaje: Cham Springer International Publishing 01.11.2025
    “…) for community detection in attributed networks. The model adeptly captures representations from both the network’s…”
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    AddAG-AE: Anomaly Detection in Dynamic Attributed Graph Based on Graph Attention Network and LSTM Autoencoder Autor Miao, Gongxun, Wu, Guohua, Zhang, Zhen, Tong, Yongjie, Lu, Bing

    ISSN: 2079-9292, 2079-9292
    Vydavateľské údaje: Basel MDPI AG 01.07.2023
    Vydané v Electronics (Basel) (01.07.2023)
    “…Recently, anomaly detection in dynamic networks has received increased attention due to massive network-structured data arising in many fields, such as network security, intelligent transportation…”
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    DVAE-GNN: a dual variational autoencoder graph neural network for unsupervised anomaly detection in static attributed networks Autor Piridi, Hari Prasad, Chakraborty, Dipanjan, Upadhyay, Prajna Devi

    ISSN: 2731-6955, 2731-6955
    Vydavateľské údaje: Cham Springer International Publishing 26.11.2025
    Vydané v Discover data (26.11.2025)
    “…), a novel framework for unsupervised anomaly detection in static attributed networks leveraging the strengths of variational autoencoders (VAEs…”
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    An autoencoder considering multi-order and structural-role similarity for community detection in attributed networks Autor Guo, Kun, Lin, Gaosheng, Wu, Ling

    ISSN: 0924-669X, 1573-7497
    Vydavateľské údaje: New York Springer US 01.09.2023
    “…A community is composed of closely related nodes. Detecting communities in a network has many practical applications, such as online product recommendation, biological molecule discovery and criminal group tracking…”
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    Unsupervised Graph Attention Autoencoder for Attributed Networks using K-means Loss Autor Bekkair, Abdelfateh, Bellaouar, Slimane, Oulad-Naoui, Slimane

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 24.11.2023
    Vydané v arXiv.org (24.11.2023)
    “…}ncoder for community detection in attributed networks (GAECO). The proposed model adeptly learns representations from both the network's topology and attribute information, simultaneously addressing dual objectives…”
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    A Comparative Study of Graph Autoencoder-based Community Detection in Attributed Networks Autor Bekkair, Abdelfateh, Bellaouar, Slimane, Oulad-Naoui, Slimane, Zita, Kaoutar

    Vydavateľské údaje: IEEE 14.12.2024
    “… In this paper, we begin by proposing a taxonomy of graph autoencoder community detection approaches in attributed networks based on the type of autoencoder…”
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    AttentionAE: Autoencoder for Anomaly Detection in Attributed Networks Autor Qin, Kenan, Zhou, Yihui, Tian, Bo, Wang, Rui

    Vydavateľské údaje: IEEE 01.10.2021
    “… Therefore, in this paper, we propose a method for attributed network anomaly detection based on an autoencoder considering the node attention mechanism and an anomaly score generator…”
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    A Graph Autoencoder-based Anomaly Detection Method for Attributed Networks Autor Zhang, Kunpeng, Lu, Guangyue, Li, Yuxin, Xu, Cai

    Vydavateľské údaje: IEEE 01.03.2023
    “… To address the above problems, we propose a graph autoencoder-based anomaly detection method for attributed networks…”
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    Trans-DAE: Transformer-based Double Autoencoder for Anomaly Detection on Attributed Networks Autor Zhang, Kunpeng, Lu, Guangyue, Li, Yuxin

    Vydavateľské údaje: IEEE 29.07.2023
    “…Anomaly node detection on attribute networks has recently attracted increasing research attention and has a wide range of applications in many fields, such as cyber security, finance, and healthcare…”
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    Dual-decoder graph autoencoder for unsupervised graph representation learning Autor Sun, Dengdi, Li, Dashuang, Ding, Zhuanlian, Zhang, Xingyi, Tang, Jin

    ISSN: 0950-7051, 1872-7409
    Vydavateľské údaje: Amsterdam Elsevier B.V 25.12.2021
    Vydané v Knowledge-based systems (25.12.2021)
    “… Recently, graph autoencoders have been proven to be an effective way to solve this problem in some attributed networks…”
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