Suchergebnisse - deep adversarial convolution autoencoder network~

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  1. 1

    Enhanced Prediction of the Remaining Useful Life of Rolling Bearings Under Cross-Working Conditions via an Initial Degradation Detection-Enabled Joint Transfer Metric Network von Qi, Lingfeng, Pan, Jiafang, Huang, Tianping, Zhou, Zhenfeng, Huang, Faguo

    ISSN: 2076-3417, 2076-3417
    Veröffentlicht: Basel MDPI AG 01.06.2025
    Veröffentlicht in Applied sciences (01.06.2025)
    “… ), in which RAPP is obtained from a novel deep adversarial convolution autoencoder network (DACAEN) and compares discrepancies between the input and the reconstruction …”
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    Journal Article
  2. 2

    Video anomaly detection and localization via multivariate gaussian fully convolution adversarial autoencoder von Li, Nanjun, Chang, Faliang

    ISSN: 0925-2312, 1872-8286
    Veröffentlicht: Elsevier B.V 05.12.2019
    Veröffentlicht in Neurocomputing (Amsterdam) (05.12.2019)
    “… Gaussian Fully Convolution Adversarial Autoencoder (MGFC-AAE), while the latent representations of anomalies …”
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  3. 3

    Learning to Generate SAR Images With Adversarial Autoencoder von Song, Qian, Xu, Feng, Zhu, Xiao Xiang, Jin, Ya-Qiu

    ISSN: 0196-2892, 1558-0644
    Veröffentlicht: New York IEEE 2022
    “… A novel adversarial autoencoder (AAE) is then proposed as an SAR representation and generation network …”
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  4. 4

    L2G-ECG: Learning to Generate Missing Leads in ECG Signals using Adversarial Autoencoder von Srivastava, Apoorva, Sheet, Debdoot, Patra, Amit

    ISSN: 2168-2194, 2168-2208, 2168-2208
    Veröffentlicht: United States IEEE 09.07.2025
    Veröffentlicht in IEEE journal of biomedical and health informatics (09.07.2025)
    “… A convolution neural network-based encoder-decoder-like network is trained to generate the missing lead signals, guided by a Visual Turing Test discriminator to enhance signal realism …”
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  5. 5

    Pixel-Level and Global Similarity-Based Adversarial Autoencoder Network for Hyperspectral Unmixing von Tao, Wei, Zhang, Haiyang, Zeng, Shan, Wang, Long, Liu, Chaoxian, Li, Bing

    ISSN: 1939-1404, 2151-1535
    Veröffentlicht: Piscataway IEEE 2025
    “… To address these challenges, we propose a novel adversarial autoencoder unmixing network considering pixel-level and global …”
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  6. 6

    Synthetic Time-Series Data Generation for Smart Grids Using 3D Autoencoder GAN von Zhang, Guihai, Sikdar, Biplab

    ISSN: 1551-3203, 1941-0050
    Veröffentlicht: Piscataway IEEE 01.07.2025
    Veröffentlicht in IEEE transactions on industrial informatics (01.07.2025)
    “… In this paper, we introduce the 3D Autoencoder Generative Adversarial Network (3DAE GAN) as a solution to generate high-resolution and multivariate synthetic time-series …”
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    DVAEGMM: Dual Variational Autoencoder With Gaussian Mixture Model for Anomaly Detection on Attributed Networks von Khan, Wasim, Haroon, Mohammad, Khan, Ahmad Neyaz, Hasan, Mohammad Kamrul, Khan, Asif, Mokhtar, Umi Asma, Islam, Shayla

    ISSN: 2169-3536, 2169-3536
    Veröffentlicht: Piscataway IEEE 2022
    Veröffentlicht in IEEE access (2022)
    “… Deep learning approaches like graph autoencoders are utilized to perform anomaly detection through obtaining node embeddings while dealing with the network nonlinearity and sparsity …”
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  8. 8

    Reconstructing feedback representations in the ventral visual pathway with a generative adversarial autoencoder von Al-Tahan, Haider, Mohsenzadeh, Yalda

    ISSN: 1553-7358, 1553-734X, 1553-7358
    Veröffentlicht: United States Public Library of Science 01.03.2021
    Veröffentlicht in PLoS computational biology (01.03.2021)
    “… the computational role of feedback processes poorly understood. Here, we developed a generative autoencoder neural network model and adversarially trained it on a categorically diverse data set of images …”
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  9. 9

    An unsupervised approach for thermal to visible image translation using autoencoder and generative adversarial network von Patel, Heena, Upla, Kishor P.

    ISSN: 0932-8092, 1432-1769
    Veröffentlicht: Berlin/Heidelberg Springer Berlin Heidelberg 01.07.2021
    Veröffentlicht in Machine vision and applications (01.07.2021)
    “… The current research on image-to-image translation for day-time has achieved remarkable performance using deep learning methods …”
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  10. 10

    A Novel Fault Detection Method Based on One-Dimension Convolutional Adversarial Autoencoder (1DAAE) von Wang, Jian, Li, Yakun, Han, Zhiyan

    ISSN: 2227-9717, 2227-9717
    Veröffentlicht: Basel MDPI AG 01.02.2023
    Veröffentlicht in Processes (01.02.2023)
    “… Fault detection is an important and demanding problem in industry. Recently, many researchers have addressed the use of deep learning architectures for fault detection applications such as an autoencoder …”
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    OD-SHIELD: Convolutional Autoencoder-Based Defense Against Adversarial Patch Attacks in Object Detection von Kim, Byeongchan, Kim, Heemin, Kang, Minjung, Nam, Hyunjee, Park, Sunghwan, Lee, Jaewoo, Kwak, Il-Youp

    ISSN: 2169-3536, 2169-3536
    Veröffentlicht: Piscataway IEEE 2025
    Veröffentlicht in IEEE access (2025)
    “… In the evolving landscape of deep neural network security, adversarial patch attacks present a serious challenge for object detection systems …”
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    Monitoring the misalignment of machine tools with autoencoders after they are trained with transfer learning data von Demetgul, Mustafa, Zheng, Qi, Tansel, Ibrahim Nur, Fleischer, Jürgen

    ISSN: 0268-3768, 1433-3015
    Veröffentlicht: London Springer London 01.10.2023
    “… CNC machines have revolutionized manufacturing by enabling high-quality and high-productivity production. Monitoring the condition of these machines during …”
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  13. 13

    Generating Synthetic Short-Range FMCW Range-Doppler Maps Using Generative Adversarial Networks and Deep Convolutional Autoencoders von de Oliveira, Marcio L. Lima, Bekooij, Marco J. G.

    ISSN: 2375-5318
    Veröffentlicht: IEEE 21.09.2020
    “… In this paper, we discuss the usage of Generative Adversarial Networks (GANs) and Deep Convolutional Autoen-coders (CAE …”
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    Tagungsbericht
  14. 14

    Multi-Scale Autoencoder Suppression Strategy for Hyperspectral Image Anomaly Detection von Tu, Bing, Zhou, Tao, Liu, Bo, He, Yan, Li, Jun, Plaza, Antonio

    ISSN: 1057-7149, 1941-0042, 1941-0042
    Veröffentlicht: United States IEEE 01.01.2025
    Veröffentlicht in IEEE transactions on image processing (01.01.2025)
    “… Autoencoders (AEs) have received extensive attention in hyperspectral anomaly detection …”
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  15. 15

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

    ISSN: 1471-2105, 1471-2105
    Veröffentlicht: London BioMed Central 29.07.2025
    Veröffentlicht in 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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    SDCA: a novel stack deep convolutional autoencoder – an application on retinal image denoising von Ghosh, Swarup Kr, Biswas, Biswajit, Ghosh, Anupam

    ISSN: 1751-9659, 1751-9667
    Veröffentlicht: The Institution of Engineering and Technology 12.12.2019
    Veröffentlicht in IET image processing (12.12.2019)
    “… This study represents a deep learning based approach to denoising images and restoring features using stack denoising convolutional autoencoder …”
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  17. 17

    Spatial Super Resolution of Hyperspectral Images: Novel Approaches for Learning Deep Spatial-Spectral Prior von Kotapati, Hemanth, P.V, Arun

    ISSN: 2158-6276
    Veröffentlicht: IEEE 09.12.2024
    “… and deep learning models such as autoencoders(AE), convolution neural networks(CNN) and generative adversarial networks(GAN …”
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    Deep Learning in Image Processing and Pattern Recognition

    ISBN: 9783725843725, 3725843716, 9783725843718, 3725843724
    Veröffentlicht: MDPI - Multidisciplinary Digital Publishing Institute 2025
    “… Recent years have seen the rapid development of image processing, especially with the application of deep learning, enabling it to become the most successfully applied intelligent technology …”
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    A Systematic Review of Textile Anomaly Detection Systems von Doshi, Ananya, Dodiya, Vansh, Shah, Hetansh, Ghag, Kranti, Patil, Nilesh, Narvekar, Meera

    ISSN: 2688-0288
    Veröffentlicht: IEEE 24.02.2024
    “… The review encompasses a thorough examination of machine learning and deep learning models like Convolution Neural Networks, Generative Adversarial Networks, autoencoders, and ensemble models …”
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    Blind Image Deconvolution Using Deep Generative Priors von Asim, Muhammad, Shamshad, Fahad, Ahmed, Ali

    ISSN: 2573-0436, 2333-9403
    Veröffentlicht: Piscataway IEEE 2020
    Veröffentlicht in IEEE transactions on computational imaging (2020)
    “… ) using deep generative networks as priors. We employ two separate pretrained generative networks - given lower-dimensional Gaussian vectors as input, one of the generative models samples from the distribution of sharp images, while the other …”
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    Journal Article